WO2007127978A2 - Lighting performance power monitoring system - Google Patents

Lighting performance power monitoring system Download PDF

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Publication number
WO2007127978A2
WO2007127978A2 PCT/US2007/067782 US2007067782W WO2007127978A2 WO 2007127978 A2 WO2007127978 A2 WO 2007127978A2 US 2007067782 W US2007067782 W US 2007067782W WO 2007127978 A2 WO2007127978 A2 WO 2007127978A2
Authority
WO
WIPO (PCT)
Prior art keywords
energy
load
usage
module
power
Prior art date
Application number
PCT/US2007/067782
Other languages
French (fr)
Other versions
WO2007127978A3 (en
Inventor
Donald W. Howell
Mark W. Vinson
Frank O. Blevins
Armand J. Tamagni
Michael L. Campbell
Original Assignee
Admmicro Properties, L.L.C.
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Admmicro Properties, L.L.C. filed Critical Admmicro Properties, L.L.C.
Priority to CA2675102A priority Critical patent/CA2675102C/en
Publication of WO2007127978A2 publication Critical patent/WO2007127978A2/en
Publication of WO2007127978A3 publication Critical patent/WO2007127978A3/en

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Classifications

    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B47/00Circuit arrangements for operating light sources in general, i.e. where the type of light source is not relevant
    • H05B47/10Controlling the light source
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01RMEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
    • G01R21/00Arrangements for measuring electric power or power factor
    • G01R21/133Arrangements for measuring electric power or power factor by using digital technique
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01RMEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
    • G01R22/00Arrangements for measuring time integral of electric power or current, e.g. electricity meters
    • G01R22/06Arrangements for measuring time integral of electric power or current, e.g. electricity meters by electronic methods
    • G01R22/10Arrangements for measuring time integral of electric power or current, e.g. electricity meters by electronic methods using digital techniques
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01RMEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
    • G01R31/00Arrangements for testing electric properties; Arrangements for locating electric faults; Arrangements for electrical testing characterised by what is being tested not provided for elsewhere
    • G01R31/44Testing lamps
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01RMEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
    • G01R19/00Arrangements for measuring currents or voltages or for indicating presence or sign thereof
    • G01R19/25Arrangements for measuring currents or voltages or for indicating presence or sign thereof using digital measurement techniques
    • G01R19/2513Arrangements for monitoring electric power systems, e.g. power lines or loads; Logging
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B47/00Circuit arrangements for operating light sources in general, i.e. where the type of light source is not relevant
    • H05B47/10Controlling the light source
    • H05B47/165Controlling the light source following a pre-assigned programmed sequence; Logic control [LC]
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B47/00Circuit arrangements for operating light sources in general, i.e. where the type of light source is not relevant
    • H05B47/10Controlling the light source
    • H05B47/17Operational modes, e.g. switching from manual to automatic mode or prohibiting specific operations

Definitions

  • the present invention relates to monitoring systems and methods for detecting power usage and control of lighting systems. More particularly, the present invention provides an automated notification system that a light monitoring system requires replacement of items such as bulbs, ballasts, which may or may not be integrated with a lighting control/actuation system.
  • Maintaining adequate interior and exterior lighting levels is a significant endeavor for many building facility operators. Maintaining proper light intensity is considered to be an important factor for various building usages, including:
  • U.S. Patent No. 5,862,391 to Salas et al. which is hereby incorporated in its entirety by reference, discloses a power management control system comprising a computer (server) having standard RS485 interface cards and adapters installed in its I/O slots defining multiple industry standard Modbus RTU networks and Ethernet TCP/IP networks and the computer contains software for monitoring and controlling power usage/consumption captured by remotely controlled devices (Abstract). There is no on-board or downloadable capability for software/firmware power management or for direct device-to-device communication.
  • US Patent Application 2004/0024483 Al to Holcombe which is hereby incorporated in its entirety by reference, discloses a system, method and article of manufacture for monitoring and optimizing utility usage in an entity.
  • Paragraph 0069 at page 4 discloses as an option a central control unit may interact with appliances or interface modules for altering their cycle as needed or turn them on or turn them off at different times.
  • US Patent Application 2003/0050737 Al to Osann, Jr. which is hereby incorporated in its entirety by reference, discloses an energy-smart home system (see Fig.
  • US Patent No. 4,034,233 to Leyde which is hereby incorporated in its entirety by reference, discloses a power monitoring and regulating circuit and method having an analog input representing power delivery rate and a digital output for controlling the on/off states of a plurality of loads (see column 2, lines 37 to 67; claim 1).
  • This invention contemplates the use of a settable set point which through circuitry and not firmware the invention seeks to attain to regulating the number of loads connected to the power source.
  • US Patent No. 4,167,679 to Leyde, et al. which is hereby incorporated in its entirety by reference, discloses floating set point control circuit and method for use with electrical load control systems.
  • Column 1, lines 1-36 and claims 1, 8 and 16 disclose an electrical load control systems that continuously measures the rate of power delivered to a plurality of loads and when a predetermined rate, termed a set point, is exceeded or conversely, then one or more of the plurality of loads is disconnected (shed) or connected (added).
  • US Patent No. 4,345,162 to Hammer, et al. which is hereby incorporated in its entirety by reference, discloses a method and apparatus for load-shedding duty cycling that overrides a normal thermostat control (see claim 1). A signal from a power utility company is received to the thermostat, such as a radio signal. This invention does not measure power use and controls a single load.
  • US Patent No. 6,181,985 to O'Donnell et al which is hereby incorporated in its entirety by reference, discloses a load shed module for use in a power distribution system that includes facility for delivering both electrical power and electrical power rate information from a utility supplier.
  • This invention is physically placed between and interfaces to a utility power source and a load and requires manually setting a rotary switch on the to a threshold rate. The setting of the rotary switch is compared by the invention with a rate received from a utility supplier. If the received rate exceeds the manually set rate the invention disconnects a load from the power source.
  • US Patent No. 6,301,527 Bl to Butland, et al. which is hereby incorporated in its entirety by reference, discloses a Utilities Communications Architecture (UCA) compliant power management control system.
  • UCA Utilities Communications Architecture
  • Column 2, lines 9-25 discloses first and second intelligent electronic devices communicating over a first and second network with first and second servers that process data received from first and second intelligent electronic devices to manage power use.
  • TCP/IP and RS-485 protocol are supported (claims 2, 8, and 10) as well as other protocols.
  • This invention envisions software loaded into computers and servers to provide access to and control of power management data and functions, respectively, of intelligent electronic power management and control devices of an electrical distribution system.
  • Dencor Inc. Denver, Colorado, US (http://www.dencorinc.com) provides an expansion module for controlling multiple loads via a single unit in order to reduce energy consumption. Reliable Controls, Victoria, British Columbia, Canada
  • MACH-Global Controller that provides LAN communication through nine ports to 128 universal input-output hard points, and a MACHl and MACH2 controller each supporting communication ports and eight inputs and outputs as well as up to three expansion cards by the MACH2.
  • the Reliable Controls® MACH-System is a computer-based system of hardware and software products designed to control the comfort and manage the energy consumption of the environment with commercial buildings.
  • the system consists of: programmable controllers which have inputs and outputs that are connected to sensors and actuators used to measure and control the environment; network communications to network the controllers to facilitate sharing data and archiving data; PCs to run the various software programs used to program, operate and backup the system.” (from web-site FAQ)
  • multi-load self-contained power management devices and power management systems including a remote control PC or Server system therefor are old in the art.
  • Prior art power management devices perform fixed functions and devices exist that can respond to remote control over hardwired networks. None provide an interfaced control component local to and combined with a monitoring device and none include on-board control software/firmware to capture power measurements and use these measurements to manage multiple loads according to algorithms. Further, none comprise on-board, downloadable software/firmware interfaced with a power monitoring unit or integrated with a power monitor in a single electronic unit and that can be directly networked with like devices to manage power for single or multiple site configurations of loads.
  • a first aspect of the invention is to provide system and a method for "as-needed" proactive maintenance of lighting systems through continuous monitoring of the electric power characteristics of lighting circuits. This monitoring is used to automatically determine when lighting systems are not performing adequately.
  • This invention also provides a system and method for integration of electric power monitoring into lighting control devices such that the equipment which turns lights on and off (based on building occupancy, hour of the day, etc.) can also provide the continuous monitoring required to automatically identify deficiencies in the lighting system.
  • Another aspect of the invention provides a lighting performance monitoring system and method via electric power monitoring. As lighting system components fail, such as bulbs and ballasts, the electric power consumption of the lighting system changes characteristics. This invention provides for continuous monitoring of the lighting system electric power consumption such that failure of system components can be automatically detected at the time when such failures occur. This invention also provides a mechanism through which the type of the failed component may be automatically identified - such as bulb or ballast. This capability requires that the power consumption characteristics of individual system components are known for their various failure modes. This invention also provides for the transmission of automatic notifications to appropriate maintenance personnel, based on the above continuous monitoring.
  • the lighting performance power monitoring system continuously monitors the electrical load characteristics of lighting circuits. This is accomplished by electronic sampling of the voltage (1) and current (2) waveforms associated with lighting circuits, and using these values to calculate the required electrical load properties such as real power (watts), reactive power (vars), and apparent power (va).
  • the desired electrical load properties may vary, depending upon the type of lighting fixtures.
  • the lighting performance power monitoring system continuously compares the present electrical load characteristics of lighting circuits to one or more baseline values.
  • the baseline values are established through a calibration process that is executed when the lighting circuits are known to be performing at full capability.
  • the lighting circuit is considered to be performing inadequately and an automatic electronic notification may be sent to maintenance personnel at predefined electronic addresses.
  • the automatic notification may include information concerning the probable type of component (bulb, ballast, etc.) that has failed, based on the magnitude of change in one or more electrical load properties (watts, vars, etc.).
  • the invention can also be incorporated into a system which integrates lighting performance monitoring, as discussed above, and lighting control.
  • Electrical load switching devices are normally provided so that building lights can be turned on or off based on building occupancy. This is done to conserve energy and to inform the public when facilities are open business.
  • load switching capability may be provided through lighting control units that are designed to serve multiple lighting circuits under the control of timers, daylight sensors (photocells, etc.), or more sophisticated energy management systems.
  • This embodiment provides for the integration of lighting performance monitoring with lighting control units to reduce over-all material and labor costs as well as physical space requirements.
  • the invention may employ an integrated unit which provides both lighting load switching devices and electrical load power monitoring to continuously monitor lighting performance.
  • This embodiment could employ a lighting controller and performance monitor unit which has an electronic sub-assembly that serves multiple purposes including: Automated control of lighting circuit load switching devices through a two-way data link with an energy management system or through control algorithms stored locally within the Lighting Controller and Performance Monitor; Automated lighting performance monitoring as described above; and Automated notification of maintenance personnel via a connected energy management system or through a dedicated data link.
  • a typical device that may be employed for the combination lighting control and performance monitoring may be a power management device, including: a monitor module that directly monitors energy usage of at least one energy load to generate at least one measurement of energy usage by the at least one energy load; and, if desired, a control module operatively coupled to the monitor module to control energy usage by the at least one energy load in a pre-determined manner that is based on the at least one measurement of energy usage, wherein the control module controls the at least one energy load via a data link.
  • monitor module is meant any component(s) that directly monitors energy usage of at least one energy load to generate at least one measurement of energy usage by the at least one energy load.
  • control module any component(s) that control energy usage by the at least one energy load in a pre-determined manner that is based on the at least one measurement of energy usage.
  • the monitor module may have separate hardware/software components from the control module, or the monitor module may share some or all of its hardware/software components with the control module.
  • the control module is optional for the aspect of the present invention involving monitoring the electric power characteristics of lighting circuits to determine when maintenance is needed. For example, a monitor module with a capability to transmit notifications to appropriate maintenance personnel based on the monitoring may suffice.
  • FIG. IA illustrates an embodiment of lighting performance power monitor according to the present invention that detects and notifies maintenance personnel.
  • FIG. IB is a flowchart presenting the operational steps performed by the device in
  • FIG. IA is a diagrammatic representation of FIG. IA.
  • FIG. 1C illustrates another embodiment of the present invention integrated package that combines integrated lighting control and performance monitoring functioning that includes notification of bulb and ballast outages.
  • FIG. ID illustrates an overview schematic a system including a monitor/controller device for performing the present invention.
  • FIG. IE illustrates an interfaced embodiment of the present invention having separate interfaced control and monitoring components.
  • FIG. IF illustrates an integrated embodiment of the present invention having on board control integrated in the monitoring component.
  • FIG. 2 illustrates an electrical distribution panel diagram configured according with a device according to the present invention to control multiple sub loads.
  • FIG. 3 illustrates multiple sites communicating with one another to accomplish management and control according to the present invention.
  • FIGs. 4A, 4B and 4C illustrate a flow diagram of control software/firmware for the monitor/controller embodiment of FIG. ID.
  • FIG. 5 illustrates the components and interfaces of a tightly integrated combination monitor/controller according to the present invention.
  • FIGs. 6A, B, C, D(a), D(b), E, F, G, H, I, J and K are combined and detailed views of a wiring diagram of another preferred embodiment of a combination monitor/controller for use in the present invention.
  • FIG. 6A illustrates a schematic diagram of a preferred embodiment of the combination monitor-controller illustrated in FIG. 5.
  • FIGs. 6B and 6C illustrate enlarged views of a current monitoring interface of the combination monitor-controller illustrated in FIG. 6A.
  • FIG. 6D(a) illustrates an enlarged view of a local control interface, and a direct current power supply of the combination monitor-controller illustrated in FIG. 6A.
  • FIG. 6D(b) illustrates an enlarged view of a voltage monitoring interface of the combination monitor-controller illustrated in FIG. 6A.
  • FIGs. 6E and 6F illustrate enlarged views of portions of an analog-to-digital converter of the combination monitor-controller illustrated in FIG. 6A.
  • FIG. 6G illustrates an enlarged view of a high voltage opto-isolator and a portion of a data flow controller of the combination monitor-controller illustrated in FIG. 6A.
  • FIG. 6H illustrates an enlarged view of a portion of the data flow controller not illustrated in FIG. 6G.
  • FIGs. 61 and 6 J illustrate enlarged views of a remote communication interface of the combination monitor-controller illustrated in FIG. 6A.
  • FIG. 6K illustrates an enlarged view another local interface of the combination monitor-controller illustrated in FIG. 6A.
  • FIG. 7 is a prior art power management system including a host server as a controller.
  • FIG. 8 is the system of FIG. 7 modified according to the present invention.
  • FIGS. 9 and 10 show photographs of an ADM-3311 Multi-Circuit Power Monitor, available from ADMMicro, LLC, Roanoke, Virginia, suitable for containing firmware according to the present invention.
  • FIGS. 11 and 12 show photographs of an ADM-1204 Multi-Circuit Power Monitor, available from ADMMicro, LLC, Roanoke, Virginia, suitable for containing firmware according to the present invention.
  • ADMMicro, LLC available from ADMMicro, LLC, Roanoke, Virginia
  • FIG. IA is a schematic of an embodiment of a lighting performance monitor according to the present invention. As shown in the drawing, the lighting performance power monitor
  • the 1000 includes voltage measurement inputs 1010 and current transformer inputs 1020.
  • a power panel 1030 from which a plurality of circuits light up different zones, (e.g. areas) of a particular retail establishment, office, etc. Both the voltage and the current waveforms are sampled to calculate the electrical load, such as power (watts), reactive power (vars), and apparent power (va).
  • the properties of the load may vary, of course, depending on the type of lighting fixtures.
  • FIG. IB provides a flowchart that shows the operational steps that a system as in the present invention can operate. This flowchart is shown for purposes of illustration and does not limit the invention to the types of measurements shown or the specific steps that are described.
  • step 1100 the lighting performance monitor (and
  • Controller simultaneously samples voltage and current waveforms, with the voltage measurement in this case being provided at input 1010 (shown in FIG. IA) and the current input 1020 from current transformer 1040.
  • the light fixtures (bulbs, ballast, etc) 1050 (shown in FIG. IA) all draw a certain amount of power while operational. Thus a baseline should be established with all of the lights being operational, and there can be variances (such as also establishing a baseline with 50% of the lights being operational, 25 %, etc) and these values are recorded.
  • the Lighting Performance Power Monitor 1000 continuously compares the present electrical load characteristics of lighting circuits to one or more baseline values. Baseline values are established through a calibration process that is executed when the lighting circuits are known to be performing at full capability.
  • the present power values are calculated.
  • these values are compared with the baseline values.
  • notification is sent to maintenance personnel, and/or whomever is designated to be a recipient of these messages.
  • the maintenance person will presumably go on site with the replacement equipment, or possibly request or perform a visual inspection to locate the light fixture that is not operating properly.
  • the performance monitor can, for example, identify the malfunctioning individual circuit and the zone that requires attention. Essentially, if a light burns out, the amount of power drawn should decrease by a mount in the area of the predetermined delta. In fact, in the case of multiple failures the lighting performance monitor could issue an alert that more than one light fixture is malfunctioning, based on the amount of deviation from the baseline (e.g. three light fixtures malfunctioning would caused the measured values to deviate from the baseline more than if one light fixture malfunctions. Again, whether the power reading is peak-to-peak watts, rms, vars, etc., is a selection according to the type of lighting used. However, in virtually all cases, there will be a change in the baseline values if one or more light fixtures malfunctions.
  • the method of notification can be email via broadband, via telco, wireless, or virtually any form of wire or wireless communication, and may use the Internet, or a private network.
  • the goal is that the maintenance person can receive, possible even a message on his telephone, a notification that at least one light appears to be malfunctioning based on the characteristics.
  • FIG. 1C shows another embodiment of the present invention.
  • the controller being a device that monitors usage and turns lights on or off according to certain criteria, such as time of day, day of week, etc.
  • Electrical load switching devices are normally provided so that building lights can be turned on or off based on building occupancy. This is done to conserve energy and to inform the public when facilities are open for business.
  • load switching capability may be provided through lighting control units that are designed to serve multiple lighting circuits under the control of timers, daylight sensors (photocells, etc.), or more sophisticated energy management systems.
  • This embodiment provides for the integration of lighting performance monitoring with lighting control units to reduce over-all material and labor costs as well as physical space requirements.
  • the monitoring and controller functions can be performed by software, hardware, firmware, and/or combinations of the above.
  • microprocessor chips have these functions programmed in (and/or burnt in), but there is also a possibility that software could be provided, and thus a computer might be an integral part of the controller/monitor. Updates might be easier on one system versus another, but in any case the invention provides an automated monitoring (and optionally control) of light fixtures and lighting systems.
  • FIG. 1C shows an integrated unit which provides both lighting load switching devices and electrical load power monitoring to continuously monitor lighting performance.
  • Lighting Controller and Performance Monitor is an electronic sub-assembly that serves multiple purposes including:
  • FIG. ID illustrates a high level block diagram of an embodiment of the remote/local combined power monitoring/controlling device that can be employed to perform the present invention.
  • Remote access to a combined monitor/controller 212 according to the current invention is provided via at least one of a communication line, a wide area network (WAN), and a wired and/or wireless local area network (LAN) 101.
  • the combined monitor/controller 212 typically is a combination of a single controller unit 212a interfaced to a single monitor unit 212b (see, e.g., FIG. IB) and preferably is a single integrated electrical unit 212c (see, e.g., FIG.
  • the monitor/controller 212 of the present invention controls the settings of the plurality of thermostats 102 (when and at what temperatures they turn on and off) as well as turning on/off each of the plurality of light circuits 103.
  • the present invention preferably performs one or more of the following functions within an interfaced control unit 212a or preferably within a single integrated electronic unit 212c:
  • Control algorithms are downloadable and have downloadable parameters for update and tuning
  • system and method of the present invention may employ a single compact electronic device interfacing/integrating robust communications capabilities and management
  • control functions for at least one of [0085] • at least one energy load
  • the present invention typically comprises downloadable software, preferably firmware, containing the at least one control algorithm.
  • the present invention typically comprises at least multiple analog-to- digital input channels, and optionally comprises at least one of a current input, an optical circuit, an RS-485 output, an RS-232 output, a wireless network interface, and a wired network interface.
  • the present invention typically comprises a persistent store for retaining historical data for each monitored load and environmental variable. Retention and purging of these historical data can be controlled remotely and these historical data can be locally displayed.
  • the present invention typically multiplexes subloads at a single site across a maximum power usage (pre-set or algorithmically determined) as well as multiplexes loads across multiple networked sites.
  • Wired and wireless network protocols are supported to provide inter-site and intra-site connectivity as well as to provide remote control of devices using standard messaging such as e-mail.
  • systems 700 including single circuit monitors and at least one server 701 that monitor and control multiple electrical loads are well known in the art.
  • Such prior art systems 700 include a plurality of single-circuit (single and poly phase circuits) power monitoring devices (meters) which are periodically interrogated by a host server.
  • the host server 701 uses data from the many power monitoring devices 702 to calculate target setpoints for multiple electrical loads 703 and communicates with a plurality of electrical load control devices 704 to implement the target setpoints (control loads according to the algorithms).
  • the present invention preferably takes advantage of the fact that the power supply for the multiple lighting loads normally comes through a few common power distribution panels 210 (such as circuit breaker panels).
  • the many single-circuit power monitoring devices (traditional approach) are replaced with a few, or just one, multiple-circuit power monitoring controlling device(s) 212 which can significantly reduce the cost, complexity, and physical footprint for the power monitoring component of the energy management system.
  • most of the energy management systems in use today do not include basic power monitoring due to the cost, complexity, and physical footprint associated with installing multiple single-circuit power monitoring devices (considered too expense to install).
  • the present invention may employ a multi-circuit monitor.
  • the present invention takes advantage of the low-cost, high-performance microprocessors that are readily available today by embedding control algorithms in software locally resident on the device, preferably firmware, directly interfaced with multiple-circuit power monitoring electronics.
  • a device typically is a collection of components in close proximity to each other, e.g., within a single housing or within 5 or less feet apart or within 24 or 12 or less inches apart or within two or more adjacent housings.
  • Traditional energy management systems employ more complex workstation or server class computers and implement the control algorithms in software.
  • These traditional energy management "host” servers are significantly more costly to purchase and operate, are less environmentally rugged, and are subject to many Internet-related security vulnerabilities.
  • each device may communicate with a server, typically each device has local processing and memory for implementing one or more control algorithms, rather than using the server for implementing the one or more control algorithms.
  • a system with embedded control algorithms monitors and controls multiple electrical loads of various configurations 510 511 515 516 - including both single 204 and poly-phase applications 203. At least some of the electrical loads are lighting loads.
  • the single monitor/controller 212 is simply wired 209 to common voltages at an electrical distribution panel 210 and can be connected to remote current sensing units 515 to accept power variable measurements.
  • the monitor/controller 212 of the present invention includes at least one an on-board control algorithm 504 having at least one pre-determined, settable goal. A settable/downloadable threshold is an example of one such goal.
  • the at least one algorithm accepts power 515 and environmental variable 516 measurements as inputs and determines how to control the power consumers 510 and other devices 511 being monitored to achieve at least one goal of the at least one algorithm.
  • the combined monitor/controller 212 provides advanced sampling, including multiple analog-to-digital converters for fast waveform sampling. All channels (the 12 shown in FIG.
  • monitor/controller 212 of the present invention provides ANSI certified accuracies with harmonic capture and analysis capabilities.
  • FIG. 6 A illustrates a schematic diagram of a preferred embodiment of the combination monitor-controller 212 illustrated in FIG. 5.
  • Monitor/controller 212 includes a current monitoring interface 610, a voltage monitoring interface 620, an analog-to-digital (AJO) converter 631 (having parts 630 and
  • a high voltage opto-isolator 640 a data flow controller 650, a remote communication interface 660, local control interfaces 670 (FIG. 6D(a)) and 675 (FIG. 6K), and a direct current (dc) power supply 680.
  • dc direct current
  • Current monitoring interface 610 provides a twelve-channel interface between the power circuits being monitored and electrical A/D converter 631.
  • FIGs. 6B and 6C illustrate enlarged views of portions of the current monitoring interface 610 of the combination monitor-controller illustrated in FIG. 6A including low-pass filters 612 A-F shown in FIG. 6B and low-pass filters 612 G-L shown in FIG. 6C.
  • Each of the twelve channels is connected to a separate power circuit to monitor the flow of current through the circuit.
  • the connection is made with a current tap at both a supply (i.e., hot) line and a return (i.e., neutral) line of the power circuit using a current transformer.
  • Each current tap provides a waveform signal that is representative of the current flow at the tap point.
  • the supply and return line waveforms of the power circuit provide a differential signal pair representing the current flow through the power circuit and this pair is provided to one channel of current monitoring interface 610.
  • Use of the differential signal waveform is preferred to the use of either one of the individual waveform signals because the individual waveform signals usually have the same noise components superimposed on them and these noise components can be largely eliminated by measuring the differential amplitude between the two individual waveforms.
  • FIG. 6A illustrates analog-to-digital (A/D) converter 631 having portions 630 and 634.
  • FIG. 6E illustrates an enlarged view of portion 630 of the analog-to-digital
  • FIG. 6F illustrates an enlarged view of portion 634 of the analog-to-digital
  • FIG. 6F illustrates an enlarged view of an analog-to-digital (A/D) converter 634.
  • each one of the twelve A/D converter channels has first and second inputs that respectively receive the filtered and buffered supply and return line waveform signals of the differential signal pair corresponding to one of the twelve power circuits being monitored.
  • FIG. 6D(b) illustrates an enlarged view of a voltage monitoring interface 620 of the combination monitor-controller illustrated in FIG. 6A.
  • Voltage monitoring interface 620 provides a three-phase interface to a power line supplying power to each of the power circuits being monitored. For each phase of the power line, a voltage tap is provided to communicate a voltage waveform, representing the voltage changes occurring on the phase, to a separate one of three low-pass filters 622. Low- pass filters 622 filter and impedance buffer their respectively received phase voltage waveforms. Thereafter, each of the filtered and buffered phase voltage waveforms is provided to a separate channel of A/D converter 631 shown in FIG. 6E. [00109] A/D converter 631 has three sample and hold (S/H) A/D converters (S/H converters), namely, S/H converters 632-633 shown in FIG. 6E and S/H converter 634 shown in FIG. 6F.
  • S/H converters sample and hold A/D converters
  • Each of the S/H converters 632-634 is capable of simultaneously determining six differential analog values and converting these analog values to a digital representation of these values. Each differential value is determined by the amplitude difference between two analog signals provided to the inputs of a channel of S/H converter 632-634. As each of S/H converters 632-634 has six individual channels, a combined total of eighteen differential analog values can be simultaneously determined and converted to digital representations by A/D converter 630.
  • Each of the twelve differential signal pairs provided by current monitoring interface 610 is provided to a separate channel of S/H converters 632 and 633.
  • S/H converters 632 and 633 generate digital representations of the waveform differences existing at the pair of current taps for each of the twelve power circuits monitored.
  • S/H converter 634 receives each of the three phase voltage waveforms provided by voltage monitoring interface 620 at a separate channel and determines a difference between each phase voltage waveform and a reference waveform.
  • the determined difference for each channel is converted to a digital representation that reflects the voltage detected at the corresponding phase tap.
  • S/H converters 632 and 633 receive the filtered and impedance buffered differential signal pairs, representing the supply and return current waveforms, for each of the twelve power circuits interfaced to monitor/controller 212 by current monitoring interface 610. For each of their respective six channels, S/H converters
  • S/H converters 632 and 633 perform this detection and conversion process repeatedly so that the sequence of digital values produced for each channel provides a representation of the current flow through the corresponding power circuit.
  • S/H converter 634 receives the filtered and impedance buffered phase voltage waveforms representing the voltage waveforms of the three-phase power line.
  • S/H converter 634 detects the analog amplitude difference of each phase voltage waveform, with respect to a reference waveform, at a point in time and converts this amplitude difference to a digital representation of the difference. S/H converter 634 performs this detection and conversion process repeatedly so that the sequence of digital values produced for each channel provides a representation of the voltage waveform at the corresponding phase of the power line.
  • High voltage opto-isolator 640 receives and buffers the digital values produced by S/H converter 634 and communicates the buffered digital values as data to other components of monitor/controller 212, through optically-coupled data line drivers 642.
  • FIG. 6G illustrates an enlarged view of a portion 640 of the combination monitor-controller 212 illustrated in FIG. 6 A including the high voltage opto-isolator and a portion of a data flow controller.
  • FIG. 6H illustrates an enlarged view of a portion 650 of the data flow controller not illustrated in FIG. 6G.
  • FIG. 6H illustrates an enlarged view another local interface 650 of the combination monitor-controller 212.
  • the electrical signal isolation provided by line drivers 642 is desirable for electrically isolating monitor/controller 212's low- voltage components, which receive the digital data representing the phase voltage waveforms, from the components that may directly or indirectly receive the high voltage present at the phase taps of the high voltage (e.g., 480 VAC) power line.
  • the data flow controller controls the flow of specific data and control signals among the components of monitor/controller 212 and between these components and external devices. This control is provided by an address decoder 652 (FIG. 6H) and several bus buffers/line drivers 654 (FIGs. 6G and 6H).
  • Address decoder 652 decodes a three-bit encoded value provided by an address bus and selects one of eight prospective addresses identified by the encoded value. The selected address is communicated internally within monitor/controller 212 and externally, as necessary, to control the flow of specific data and control signals within monitor/controller 212. Bus buffers/line drivers 654 cooperate with address decoder 652 and other components of monitor/controller 212 to receive or transmit the specific data and control signals.
  • External devices illustrated in FIG. 5 may include a touchscreen device 517, a microprocessor 518, a communication modem 514, and environmental monitoring and control devices 511 516.
  • the optional touchscreen device 517 displays specific data and control signals communicated through monitor/controller 212 and conveys user commands to monitor/controller 212.
  • the microprocessor 518 provides the processing capability to determine operational characteristics of the monitored power line and each of the monitored power circuits, based on the data generated by A/D converter 630. Additionally, the microprocessor 518 provides general control and communication functionality for monitor/controller 212 and the external devices to which it is connected.
  • the communication modem 514 supports communication between the microprocessor 518 and remotely located devices.
  • the environmental monitoring and control devices 511 516 monitor and control environmental systems that may affect the operational characteristics of the power line or its associated power circuits.
  • FIGs. 61 and 6 J illustrate enlarged views of portions 660a and 660b of a remote communication interface 660 of the combination monitor-controller illustrated in FIG. 6A.
  • Remote communication interface 660 provides an interface for modem, RS-
  • FIG. 6D(a) illustrates an enlarged view of a local control interface 670, and a direct current power supply 680 of the combination monitor-controller illustrated in FIG. 6A.
  • Local control interface 670 provides an opto-isolated communication interface between local environmental devices and monitor/controller 212.
  • Local control interface 685 provides a 5 Vdc switched output to an external device and is preferably used to operate a display light of the touchscreen device 517.
  • Power supply 680 receives energy from an alternating current source and converts this energy for provision within monitor/controller 212 by regulated 5 Vdc and 3.3 Vdc sources.
  • FIG. 6K illustrates an enlarged view another local interface 675 of the combination monitor-controller illustrated in FIG. 6A.
  • Local interface 675 communicates with portion 650 of the data flow controller.
  • the current inputs 202 are designed with instrumentation amplifiers. Full differential inputs are utilized to achieve the best signal conditions and noise rejection.
  • the potential inputs employ optical circuitry to provide high accuracy and isolation.
  • the monitor/controller 212 accepts polyphase inputs including at least one of 120/277 volts (3 phase/4 wire) and 480 volts (3 phase/3 wire) 203. Single phase inputs to 480 volts 209 are acceptable.
  • the monitor/controller 212 comprises a plurality of digital inputs and outputs, serial ports and can be configured for a plurality of communication protocols.
  • the plurality of serial ports further comprises at least two RS-485 ports and at least one RS-232 port.
  • the plurality of protocols includes ModBus TCP/IP ASCII/RTU, 514 [00131]
  • the monitor/controller 212 manages HVAC and the at least one algorithm comprises "setback" scheduling 512.
  • Environmental measurements 516 include trending temperatures through at least one of a thermostat and at least one wireless sensor.
  • the at least one algorithm further provides demand control of a plurality of sub-loads.
  • Wireless sensor measurements include ambient, freezer/cooler and HVAC duct temperatures.
  • Monitoring and control variables 516 for HVAC include temperature and humidity.
  • a persistent store 503 is provided for long term storage of measurements (e.g., load profiles) and optionally downloadable firmware/software executed by a microprocessor 518.
  • the downloadable firmware is stored in a microprocessor 518.
  • a listing of typical firmware/software is included in Appendix A.
  • storage comprises at least one of SRAM and flash memory and at least 128Kb of SRAM and 256 Kb of flash memory is provided.
  • the monitor/controller 212 is configured to count pulses, sense contact status, and provide output alarming notification 513 on at least one input (pre-determined and downloadable) threshold 512 and the at least one input threshold 512 can be reset from a remote location 205 206 using the at least one communication media 514.
  • the communication media 514 provide the monitor/controller 212 with the ability to poll different devices 205, log data and transmit data to other systems under the direction of downloadable software that is executed by the monitor/controller 212 to capture data, e.g., as input to algorithms executed by the monitor/controller 212.
  • the captured data is maintained on-board for extended periods of time in a persistent store 503 to provide historical load profile data and is remotely retrievable by other devices 205 and a facility manager/operator 206 using any of a plurality of included communication protocols 514.
  • the monitor/controller 212 can be configured via an embedded Web server, or a PC/laptop running configuration software by a facility manager/operator 206 or by an inter-connected device 205.
  • the configuration can be accomplished via local downloads via an at least one RS-232 port or remotely via downloads using a modem or network 514.
  • Communication features 514 of the monitor/controller 212 include on-board Ethernet, embedded Web server, Embedded e-mail client, at least one serial data port, on-board modem, Modbus/485 and Modbus/IP, Xmodem file transfer.
  • a local display that is preferably a touch screen 517 provides local viewing of at least one of energy data, waveforms, and configuration parameters.
  • the system and method of the present invention thus supports on-board advanced control algorithms for energy management, e.g., demand control, and provides interfaces to load control devices such as communicating thermostats.
  • multiple-site connectivity allows at least one designated remote site to be designated a master site 212 and be able to retrieve data from many other sites 212 for centralized analysis and reporting (processing that requires more processing resources than practical to include at each site).
  • the master site designation can be done dynamically and made dependent on conditions of the plurality of such sites, their usage of power, and any other pre-determined criteria.
  • Centralized analysis allows predictive/preventive maintenance.
  • Centralized reporting provides operational data summaries for the many sites 212 within one report.
  • WAN connectivity is only one example of the connectivity possible and is intended to aid discussion rather than limit the present invention.
  • Other possible connectivity modalities are wired and wireless networks including IEEE 802.11, LANs, and, depending on the distance between monitor/controllers, may include localized wireless networks such as Bluetooth. Any protocol can be supported since the procedures needed to accommodate a protocol can be downloaded to each affected monitor/controller 212 and therefore can be updated as needed.
  • This flexibility to change and update the software/firmware executed by a monitor/controller 212 is a key distinguishing feature of the system and method of the present invention and contributes to robustness, longevity and applicability of the present invention to a broad spectrum of power management and control scenarios.
  • a plurality of power distribution panels 210 each having at least one controllable load 308, are inter-connected by and coupled to a monitor/controller 212 to monitor and control major loads 202 and perform direct bus voltage measurements 209.
  • each monitor/controller 212 comprises embedded firmware (including control algorithms) and are further each coupled to a data link 206 208 for inter-connectivity and centralized control/monitoring 207.
  • Major loads 202 comprise controllable loads 308 and include at least devices such as heating/cooling devices, lighting, fans, humidif ⁇ ers/dehumidif ⁇ ers, and motors, compressors, production line drives.
  • the present invention employs at least one energy management strategy that further leverages having multiple sites 212 in an inter-connected system 207. For purposes of example and discussion only, in a wide area network, such a management strategy may include the following options:
  • inter-connectivity 207 to curtail designated interruptible loads in each facility (such as pre-determined fraction of a facility's lighting) during periods of peak electrical demand on the utility power grid — thus taking advantage of lower electricity rates that may be associated with interruptible tariffs.
  • the system and method of the present invention includes flexible, e.g., downloadable over the inter-connectivity means 207, data gathering and control functions for accomplishing energy management strategies.
  • option (1) above can be applied (getting the utility to accept and treat the aggregated impact of many small loads as a single large load)
  • the system and method of the present invention then minimizes the peak demand of that single large load by "multiplexing" across sites 212 to significantly reduce energy cost - much like the multiplexing within a given site accomplished by a single monitor/controller 212 for local sub-loads.
  • the following algorithms comprise the embedded control algorithms of each power monitor and management device 212. These algorithms are presented for discussion only and not in any limiting sense. They are examples only of the types of embedded algorithms suited for monitoring and control but one skilled in the art will appreciate that the present invention is not limited to the following algorithm example discussions.
  • all voltage (x3) and current (xl2 or x33) waveforms are simultaneously and continuously sampled to collect and store a plurality of M samples (M typically is 64) over one full power grid sinusoidal waveform cycle (typically a time period of 16.67 milliseconds for a 60 Hz power system). Voltage waveforms are then additionally sampled to collect a total of N samples (N typically is 80) over one plus X sinusoidal waveform cycles (X typically is 1 A).
  • Various electrical power data values are then calculated using the previously collected samples as follows:
  • a one second average derived from the above per cycle RMS values are scaled to appropriate engineering units and used to further derive one second values for per phase apparent power (VA) and per phase power factor (PF), resulting in the following:
  • THD values are derived for each of the above values approximately once every Y seconds (Y typically is 2).
  • Electric power control routines are available to limit peak electrical demand (kw), including the following:
  • This algorithm limits the total electrical demand for a facility by limiting the load associated with heating/cooling during evening periods when lighting load is significantly increased by the addition of parking lot and building signage lights.
  • This algorithm is applicable to facilities where heating/cooling is handled by multiple individually controllable heating/cooling units - typically referred to as roof top units (RTUs), e.g., air conditioners, and any other type of electrical load that is suitable for control such as fans and motors.
  • RTUs roof top units
  • At least one RTU that has been identified as an at least one lowest priority unit (least critical to maintaining environmental comfort) is automatically switched off for the reminder of the evening lighting time period (7:00PM to facility e.g., a predetermined interval of, say 15, 30, or 60 minutes, depending upon the specific utility tariff) is predicted to exceed the highest peak demand for any previous demand interval during that day, additional RTUs can be temporarily switched off for the remainder of each demand interval as required to keep the peak demand from exceeding the previous peak for that day.
  • RTUs can be prioritized such that units of lesser importance are switched off first. Critical RTUs may not be included in the demand limiting control scheme.
  • This algorithm is applicable to facilities where heating/cooling is handled by multiple individually controllable roof top units (RTUs), and can be used in conjunction with the algorithm of 2.1 above for evening light load demand control.
  • This algorithm continuously limits the total electrical demand for a facility by coordinating the operation of all RTUs such that only a limited number of RTUs are drawing full load at any point in time, while allowing all RTUs to operate periodically. This is in contrast to multiplexing where each RTU would take its turn operating.
  • Each group is allowed to operate at normal setpoint targets for a limited period of time, followed by a period during which the setpoint target is significantly raised such that RTUs in this group do not draw full electrical load under normal conditions.
  • Groups are coordinated in operation such that one group is operating at normal setpoint targets while other groups are operating with temporarily raised setpoints.
  • RTUs might be identified as highly important to environmental comfort, and are allowed to always operate at the facility's target temperature for cooling, such as 74 degrees F.
  • the other four RTUs are divided into two groups of two RTUs, referred to as Group 1 and Group 2. Each group alternates between 20 minute periods of operation at the normal setpoint of 74 degrees, and 20 minute periods of operation at a raised setpoint of 77 degrees. Group 1 operates normally while Group 2 operates at a raised setpoint, and then groups alternate setpoint positions. As a result, only four of six RTUs operate at full load at any moment in time.
  • This technique can be used to limit RTU operation in any combination that is determined to be appropriate for a given facility.
  • This algorithm uses the geographical latitude and longitude of a facility to automatically calculate the sunrise and sunset time for a particular calendar day — to determine when external lighting should be switched on and off. Input from a photo sensor is also used to automatically turn lights on and off in response to unexpected darkness.
  • This algorithm measures the time duration between energy pulses (kwh) from traditional electric power meters to determine instantaneous power (kw). Instantaneous power values are needed for real time control algorithms such as the foregoing.
  • This algorithm allows existing electric meters equipped with pulse outputs to be used in such control schemes, thus leveraging a facility's installed power management and control infrastructure.
  • the algorithms are part of the software/firmware that determines the operation of a monitor/controller 212 according to the present invention.
  • firmware processing/logic flow is a main program loop [while (1) program loop within mainQ] that executes continuously, except when execution is preempted by the following hardware-based interrupt service routines:
  • timerbjsr Periodically by hardware timer interrupt timerbjsr, which primarily handles analog to digital conversion processing at the chip level (read _ads7864 and read_sb)
  • timer interrupt app_timer_interrupt Periodically by hardware timer interrupt app_timer_interrupt, which primarily handles the following processing:
  • step 401 an example of a downloaded software/firmware begins by initialized memory and hardware, including hardware interrupts at step 401. Once the processing is initialized at step 401, the process returns to step 402 at which the central ongoing housekeeping functions are performed:
  • time-of-day events are handled as required, e.g., detecting changes in daylight savings time (DST) and making adjustments accordingly;
  • DST daylight savings time
  • compensation is made for drift of the onboard clock;
  • step 403 end-of-interval processing is accomplished, e.g., by calling the appropriate routines in a load profile library (Ip. lib). Then, cycle data and per second scaled data is calculated by invoking routines in the adm7864 library at steps 404 and 405, respectively. Total harmonic distortion is calculated at step 406.
  • Ethernet support is enabled socket-level processing is performed comprising for at least two Telnet sessions, Modbus over TCP/IP, and an embedded Web server at step 409.
  • Web server support is also enabled, HTTP requests/responses are processed, and at step 451 web_server_loop is called to store new date and time values for use within web pages. If e-mail support is enabled then e-mail is processed at step 452.
  • E-mail processing includes a) accessing the designated POP3 server to check for new incoming messages, b) interpreting the content of any new messages to queue up response report generation, c) building any e-mail reports that are queue up for processing, and d) accessing the designated SMTP server to send any reply messages that are ready for transmission.
  • RS-232 port processing is performed to process incoming maintenance port request message strings, and prepare appropriate response message strings.
  • any enabled modem support is performed. This support includes handling of modem connection and processing request and response message strings.
  • touch screen 517 If there is a touch screen 517 it is services by calling lcdtick at step 455 to look for input from the touch screen (operator touch) and to update the touch screen graphical display 517 as necessary.
  • thermostats being managed If there are thermostats being managed then they are serviced by calling Tstats at step 456 to read environmental variables and thermostat settings, and to update thermostat setpoints as dictated by various control algorithms.
  • any required lighting control support is performed by calling controlfunction within contol.lib at step 457 to turn on or off multiple lighting zones as dictated by various control algorithms.
  • step 402 The processing loops around to step 402, performing this loop of steps continuously unless interrupted by a higher priority task. After servicing the higher priority task, control is returned to the interrupted step until another higher priority task needs servicing by the processor.
  • FIGs. 9 and 10 show photographs of an ADM-3311 Multi-Circuit Power
  • FIGs. 11 and 12 show photographs of an ADM- 1204 Multi-Circuit Power

Abstract

A light performance monitoring device (1000) and optionally integrated controller includes a monitor module (1020) that directly monitors energy usage of at least one energy load (1050) to generate at least one measurement of energy usage, a storage module (100 stores a series of baseline values of energy usage of the energy load, a comparator (1000) module compares energy measurements mad at predetermined intervals with the baseline values, and a notification module (1025) notifies a designated recipient that there is a deviation from the baseline values consistent with a burned out or non-operational light fixture, including but not limited to light bulbs or ballast devices (1050) A control module optionally integrated with the light performance monitoπng device can be operatively coupled to the monitor module to control energy usage by the at least one energy load via a data link in a pre-determmed manner that i based on the at least one measurement of energy usage.

Description

LIGHTING PERFORMANCE POWER MONITORING SYSTEM AND METHOD WITH OPTIONAL INTEGRATED LIGHT CONTROL
CROSS REFERENCE TO RELATED APPLICATION
[001] The present application claims the benefit of United States provisional patent application no. 60/795,644, filed April 28, 2006 and United States patent application no.
11/741,744, filed Saturday April 28, 2007, both of which are incorporated herein by reference.
FIELD OF THE INVENTION
[002] The present invention relates to monitoring systems and methods for detecting power usage and control of lighting systems. More particularly, the present invention provides an automated notification system that a light monitoring system requires replacement of items such as bulbs, ballasts, which may or may not be integrated with a lighting control/actuation system.
BACKGROUND OF THE INVENTION
[003] Maintaining adequate interior and exterior lighting levels is a significant endeavor for many building facility operators. Maintaining proper light intensity is considered to be an important factor for various building usages, including:
[004] (a) Facilitating retail sales from display floor areas; retail store operators have disclosed that there is a correlation with the amount of light used to illuminate products and the store aisles, and the length of time a consumer will remain in a store purchasing items;
[005] (b) Providing adequate egress lighting, particularly during emergency conditions such as loss of normal electrical power; recent power outages due to severe storms and/or terrorist incidents have a number of military and civilian personnel disclosing that lighting was insufficient in emergency exit areas in places open to the public; and
[006] (c) Providing adequate workspace lighting for various human work activities. For example, there are some studies showing that overall moods of employees and their productivity are impacted by the amount of lighting in the workplace.
[007] There are a number of lighting control and monitoring systems used to turn on and off lights in stores, malls, parking lots, etc. These systems sometimes include power management to make the power usage as efficient as possible.
[008] U.S. Patent No. 5,862,391 to Salas et al., which is hereby incorporated in its entirety by reference, discloses a power management control system comprising a computer (server) having standard RS485 interface cards and adapters installed in its I/O slots defining multiple industry standard Modbus RTU networks and Ethernet TCP/IP networks and the computer contains software for monitoring and controlling power usage/consumption captured by remotely controlled devices (Abstract). There is no on-board or downloadable capability for software/firmware power management or for direct device-to-device communication. [009] US Patent Application 2004/0024483 Al to Holcombe, which is hereby incorporated in its entirety by reference, discloses a system, method and article of manufacture for monitoring and optimizing utility usage in an entity. Paragraph 0069 at page 4 discloses as an option a central control unit may interact with appliances or interface modules for altering their cycle as needed or turn them on or turn them off at different times. [0010] US Patent Application 2003/0050737 Al to Osann, Jr., which is hereby incorporated in its entirety by reference, discloses an energy-smart home system (see Fig. 1) that requires energy monitoring and control points installed at switches, plugs, and other points of energy use and communication with a power line data link to a centrally located intelligent device such as a PC, residential gateway, and the like for viewing and energy control functions. A separate electrical breaker box supplements the distributed energy monitoring and control points. The energy-smart system of Osann, Jr. provides internet access to the centrally located intelligent device, utility company, and other service providers (e.g., security) as well as a utility company power meter. Subloads controlled can include direct wired subloads, such as an air-conditioner or furnace.
[0011] US Patent No. 4,034,233 to Leyde, which is hereby incorporated in its entirety by reference, discloses a power monitoring and regulating circuit and method having an analog input representing power delivery rate and a digital output for controlling the on/off states of a plurality of loads (see column 2, lines 37 to 67; claim 1). This invention contemplates the use of a settable set point which through circuitry and not firmware the invention seeks to attain to regulating the number of loads connected to the power source.
[0012] US Patent No. 4,167,679 to Leyde, et al., which is hereby incorporated in its entirety by reference, discloses floating set point control circuit and method for use with electrical load control systems. Column 1, lines 1-36 and claims 1, 8 and 16 disclose an electrical load control systems that continuously measures the rate of power delivered to a plurality of loads and when a predetermined rate, termed a set point, is exceeded or conversely, then one or more of the plurality of loads is disconnected (shed) or connected (added). [0013] US Patent No. 4,345,162 to Hammer, et al., which is hereby incorporated in its entirety by reference, discloses a method and apparatus for load-shedding duty cycling that overrides a normal thermostat control (see claim 1). A signal from a power utility company is received to the thermostat, such as a radio signal. This invention does not measure power use and controls a single load.
[0014] US Patent No. 6,181,985 to O'Donnell et al, which is hereby incorporated in its entirety by reference, discloses a load shed module for use in a power distribution system that includes facility for delivering both electrical power and electrical power rate information from a utility supplier. This invention is physically placed between and interfaces to a utility power source and a load and requires manually setting a rotary switch on the to a threshold rate. The setting of the rotary switch is compared by the invention with a rate received from a utility supplier. If the received rate exceeds the manually set rate the invention disconnects a load from the power source.
[0015] US Patent No. 6,301,527 Bl to Butland, et al., which is hereby incorporated in its entirety by reference, discloses a Utilities Communications Architecture (UCA) compliant power management control system. Column 2, lines 9-25, discloses first and second intelligent electronic devices communicating over a first and second network with first and second servers that process data received from first and second intelligent electronic devices to manage power use. TCP/IP and RS-485 protocol are supported (claims 2, 8, and 10) as well as other protocols. This invention envisions software loaded into computers and servers to provide access to and control of power management data and functions, respectively, of intelligent electronic power management and control devices of an electrical distribution system.
[0016] Dencor Inc., Denver, Colorado, US (http://www.dencorinc.com) provides an expansion module for controlling multiple loads via a single unit in order to reduce energy consumption. Reliable Controls, Victoria, British Columbia, Canada
(http://www.reliablecontrols.com) provides a MACH-Global Controller that provides LAN communication through nine ports to 128 universal input-output hard points, and a MACHl and MACH2 controller each supporting communication ports and eight inputs and outputs as well as up to three expansion cards by the MACH2. These systems are described as providing cost effective management of power consumption, e.g.,
"The Reliable Controls® MACH-System is a computer-based system of hardware and software products designed to control the comfort and manage the energy consumption of the environment with commercial buildings. The system consists of: programmable controllers which have inputs and outputs that are connected to sensors and actuators used to measure and control the environment; network communications to network the controllers to facilitate sharing data and archiving data; PCs to run the various software programs used to program, operate and backup the system." (from web-site FAQ)
[0017] However, there is no enabling description of a system that is used for automatic detection that elements of a lighting system (e.g. bulbs, ballasts) require maintenance based on measured values. Nor is the technology employed to manage energy consumption provided on either web-site. The Reliable Controls products do not address non-commercial applications.
[0018] The above referenced Web pages primarily describe individual control devices and do not offer any type of integrated power monitoring and control device, nor do they disclose or suggest a device that monitors and alerts when components such as bulbs and ballasts need replacement.
[0019] Thus, multi-load self-contained power management devices and power management systems including a remote control PC or Server system therefor are old in the art. Prior art power management devices perform fixed functions and devices exist that can respond to remote control over hardwired networks. None provide an interfaced control component local to and combined with a monitoring device and none include on-board control software/firmware to capture power measurements and use these measurements to manage multiple loads according to algorithms. Further, none comprise on-board, downloadable software/firmware interfaced with a power monitoring unit or integrated with a power monitor in a single electronic unit and that can be directly networked with like devices to manage power for single or multiple site configurations of loads.
[0020] Nor do any of the above-discussed patents disclose a system that monitors when components such as bulbs and ballasts require maintenance, so that the lighting system provides the light at the predetermined power level that it was intended for normal operation. [0021] Also, repair activities must be occasionally undertaken to maintain lighting systems at desired and appropriate levels of light intensity. Light bulb and ballast technologies, as typically employed today, only provide a relatively short service life - much shorter than what is expected from the overall building lighting system. Today, such repair activities are generally inefficient labor-intensive processes characterized by periodic manual visual inspections - or driven by complaints from building occupants after prolonged periods of inadequate lighting. Both of these repair activities are not very different from the activities of maintenance personnel from almost 100 years ago when electric lighting was first installed in office buildings. Egress lighting deficiencies are frequently discovered as a result of risk to human safety during emergency conditions, often where evacuees later complained. Thus there is a need both from at least an efficiency standpoint and from a safety standpoint to improve on the method of monitoring lighting systems.
SUMMARY OF THE INVENTION
[0022] A first aspect of the invention is to provide system and a method for "as-needed" proactive maintenance of lighting systems through continuous monitoring of the electric power characteristics of lighting circuits. This monitoring is used to automatically determine when lighting systems are not performing adequately.
[0023] This invention also provides a system and method for integration of electric power monitoring into lighting control devices such that the equipment which turns lights on and off (based on building occupancy, hour of the day, etc.) can also provide the continuous monitoring required to automatically identify deficiencies in the lighting system. [0024] Another aspect of the invention provides a lighting performance monitoring system and method via electric power monitoring. As lighting system components fail, such as bulbs and ballasts, the electric power consumption of the lighting system changes characteristics. This invention provides for continuous monitoring of the lighting system electric power consumption such that failure of system components can be automatically detected at the time when such failures occur. This invention also provides a mechanism through which the type of the failed component may be automatically identified - such as bulb or ballast. This capability requires that the power consumption characteristics of individual system components are known for their various failure modes. This invention also provides for the transmission of automatic notifications to appropriate maintenance personnel, based on the above continuous monitoring.
[0025] The lighting performance power monitoring system continuously monitors the electrical load characteristics of lighting circuits. This is accomplished by electronic sampling of the voltage (1) and current (2) waveforms associated with lighting circuits, and using these values to calculate the required electrical load properties such as real power (watts), reactive power (vars), and apparent power (va). The desired electrical load properties may vary, depending upon the type of lighting fixtures.
[0026] In addition, the lighting performance power monitoring system continuously compares the present electrical load characteristics of lighting circuits to one or more baseline values. The baseline values are established through a calibration process that is executed when the lighting circuits are known to be performing at full capability. When the present electrical load characteristics deviate from baseline values by more than a predefined delta, the lighting circuit is considered to be performing inadequately and an automatic electronic notification may be sent to maintenance personnel at predefined electronic addresses. The automatic notification may include information concerning the probable type of component (bulb, ballast, etc.) that has failed, based on the magnitude of change in one or more electrical load properties (watts, vars, etc.).
[0027] The invention can also be incorporated into a system which integrates lighting performance monitoring, as discussed above, and lighting control. Electrical load switching devices are normally provided so that building lights can be turned on or off based on building occupancy. This is done to conserve energy and to inform the public when facilities are open business. Such load switching capability may be provided through lighting control units that are designed to serve multiple lighting circuits under the control of timers, daylight sensors (photocells, etc.), or more sophisticated energy management systems. This embodiment provides for the integration of lighting performance monitoring with lighting control units to reduce over-all material and labor costs as well as physical space requirements.
[0028] For example, the invention may employ an integrated unit which provides both lighting load switching devices and electrical load power monitoring to continuously monitor lighting performance. This embodiment could employ a lighting controller and performance monitor unit which has an electronic sub-assembly that serves multiple purposes including: Automated control of lighting circuit load switching devices through a two-way data link with an energy management system or through control algorithms stored locally within the Lighting Controller and Performance Monitor; Automated lighting performance monitoring as described above; and Automated notification of maintenance personnel via a connected energy management system or through a dedicated data link.
[0029] A typical device that may be employed for the combination lighting control and performance monitoring may be a power management device, including: a monitor module that directly monitors energy usage of at least one energy load to generate at least one measurement of energy usage by the at least one energy load; and, if desired, a control module operatively coupled to the monitor module to control energy usage by the at least one energy load in a pre-determined manner that is based on the at least one measurement of energy usage, wherein the control module controls the at least one energy load via a data link. [0030] By monitor module is meant any component(s) that directly monitors energy usage of at least one energy load to generate at least one measurement of energy usage by the at least one energy load.
[0031] By control module is meant any component(s) that control energy usage by the at least one energy load in a pre-determined manner that is based on the at least one measurement of energy usage. The monitor module may have separate hardware/software components from the control module, or the monitor module may share some or all of its hardware/software components with the control module.
[0032] The control module is optional for the aspect of the present invention involving monitoring the electric power characteristics of lighting circuits to determine when maintenance is needed. For example, a monitor module with a capability to transmit notifications to appropriate maintenance personnel based on the monitoring may suffice.
BRIEF DESCRIPTION OF THE DRAWINGS
[0033] FIG. IA illustrates an embodiment of lighting performance power monitor according to the present invention that detects and notifies maintenance personnel.
[0034] FIG. IB is a flowchart presenting the operational steps performed by the device in
FIG. IA.
[0035] FIG. 1C illustrates another embodiment of the present invention integrated package that combines integrated lighting control and performance monitoring functioning that includes notification of bulb and ballast outages.
[0036] FIG. ID illustrates an overview schematic a system including a monitor/controller device for performing the present invention.
[0037] FIG. IE illustrates an interfaced embodiment of the present invention having separate interfaced control and monitoring components.
[0038] FIG. IF illustrates an integrated embodiment of the present invention having on board control integrated in the monitoring component.
[0039] FIG. 2 illustrates an electrical distribution panel diagram configured according with a device according to the present invention to control multiple sub loads.
[0040] FIG. 3 illustrates multiple sites communicating with one another to accomplish management and control according to the present invention.
[0041] FIGs. 4A, 4B and 4C illustrate a flow diagram of control software/firmware for the monitor/controller embodiment of FIG. ID. [0042] FIG. 5 illustrates the components and interfaces of a tightly integrated combination monitor/controller according to the present invention.
[0043] FIGs. 6A, B, C, D(a), D(b), E, F, G, H, I, J and K are combined and detailed views of a wiring diagram of another preferred embodiment of a combination monitor/controller for use in the present invention.
[0044] FIG. 6A illustrates a schematic diagram of a preferred embodiment of the combination monitor-controller illustrated in FIG. 5.
[0045] FIGs. 6B and 6C illustrate enlarged views of a current monitoring interface of the combination monitor-controller illustrated in FIG. 6A.
[0046] FIG. 6D(a) illustrates an enlarged view of a local control interface, and a direct current power supply of the combination monitor-controller illustrated in FIG. 6A.
[0047] FIG. 6D(b) illustrates an enlarged view of a voltage monitoring interface of the combination monitor-controller illustrated in FIG. 6A.
[0048] FIGs. 6E and 6F illustrate enlarged views of portions of an analog-to-digital converter of the combination monitor-controller illustrated in FIG. 6A.
[0049] FIG. 6G illustrates an enlarged view of a high voltage opto-isolator and a portion of a data flow controller of the combination monitor-controller illustrated in FIG. 6A.
[0050] FIG. 6H illustrates an enlarged view of a portion of the data flow controller not illustrated in FIG. 6G.
[0051] FIGs. 61 and 6 J illustrate enlarged views of a remote communication interface of the combination monitor-controller illustrated in FIG. 6A.
[0052] FIG. 6K illustrates an enlarged view another local interface of the combination monitor-controller illustrated in FIG. 6A.
[0053] FIG. 7 is a prior art power management system including a host server as a controller.
[0054] FIG. 8 is the system of FIG. 7 modified according to the present invention.
[0055] FIGS. 9 and 10 show photographs of an ADM-3311 Multi-Circuit Power Monitor, available from ADMMicro, LLC, Roanoke, Virginia, suitable for containing firmware according to the present invention.
[0056] FIGS. 11 and 12 show photographs of an ADM-1204 Multi-Circuit Power Monitor, available from ADMMicro, LLC, Roanoke, Virginia, suitable for containing firmware according to the present invention. DETAILED DESCRIPTION
[0057] In the following discussions for purposes of clarity with respect to explaining the current invention, common components are numbered according to their first appearance in a drawing and well-known components are to be interpreted according to the understanding of a person ordinarily skilled in the art, e.g., wide area network (WAN) and Bluetooth are well- known in the art and are not described but given their well-known meanings.
Lighting Performance Monitor
[0058] FIG. IA is a schematic of an embodiment of a lighting performance monitor according to the present invention. As shown in the drawing, the lighting performance power monitor
1000 includes voltage measurement inputs 1010 and current transformer inputs 1020. There is a power panel 1030 from which a plurality of circuits light up different zones, (e.g. areas) of a particular retail establishment, office, etc. Both the voltage and the current waveforms are sampled to calculate the electrical load, such as power (watts), reactive power (vars), and apparent power (va). The properties of the load may vary, of course, depending on the type of lighting fixtures.
[0059] FIG. IB provides a flowchart that shows the operational steps that a system as in the present invention can operate. This flowchart is shown for purposes of illustration and does not limit the invention to the types of measurements shown or the specific steps that are described.
[0060] Referring to FIGs. IA and IB, at step 1100 the lighting performance monitor (and
Controller) simultaneously samples voltage and current waveforms, with the voltage measurement in this case being provided at input 1010 (shown in FIG. IA) and the current input 1020 from current transformer 1040. The light fixtures (bulbs, ballast, etc) 1050 (shown in FIG. IA) all draw a certain amount of power while operational. Thus a baseline should be established with all of the lights being operational, and there can be variances (such as also establishing a baseline with 50% of the lights being operational, 25 %, etc) and these values are recorded.
[0061] The Lighting Performance Power Monitor 1000 continuously compares the present electrical load characteristics of lighting circuits to one or more baseline values. Baseline values are established through a calibration process that is executed when the lighting circuits are known to be performing at full capability.
[0062] At step 1110, the present power values are calculated. At step 1120, these values are compared with the baseline values. At step 1130 it is determined whether the present values differ from the baseline values by more than the predefined values. If no, the operation of simultaneous measurement starts at step 1100 again. However, when the present values differ from the baseline values by more than a predetermined amount, at step 1140, notification is sent to maintenance personnel, and/or whomever is designated to be a recipient of these messages. When the deviation of the electrical load characteristics deviate from baseline values by more than a predefined delta, the maintenance person will presumably go on site with the replacement equipment, or possibly request or perform a visual inspection to locate the light fixture that is not operating properly. The performance monitor can, for example, identify the malfunctioning individual circuit and the zone that requires attention. Essentially, if a light burns out, the amount of power drawn should decrease by a mount in the area of the predetermined delta. In fact, in the case of multiple failures the lighting performance monitor could issue an alert that more than one light fixture is malfunctioning, based on the amount of deviation from the baseline (e.g. three light fixtures malfunctioning would caused the measured values to deviate from the baseline more than if one light fixture malfunctions. Again, whether the power reading is peak-to-peak watts, rms, vars, etc., is a selection according to the type of lighting used. However, in virtually all cases, there will be a change in the baseline values if one or more light fixtures malfunctions.
[0063] The method of notification can be email via broadband, via telco, wireless, or virtually any form of wire or wireless communication, and may use the Internet, or a private network. In any event, the goal is that the maintenance person can receive, possible even a message on his telephone, a notification that at least one light appears to be malfunctioning based on the characteristics.
Integrated Lighting Performance Monitor and Controller
[0064] FIG. 1C shows another embodiment of the present invention. In this case, there is an integrated package of the lighting performance monitor, and a lighting controller 1090, the controller being a device that monitors usage and turns lights on or off according to certain criteria, such as time of day, day of week, etc. Electrical load switching devices are normally provided so that building lights can be turned on or off based on building occupancy. This is done to conserve energy and to inform the public when facilities are open for business. Such load switching capability may be provided through lighting control units that are designed to serve multiple lighting circuits under the control of timers, daylight sensors (photocells, etc.), or more sophisticated energy management systems. This embodiment provides for the integration of lighting performance monitoring with lighting control units to reduce over-all material and labor costs as well as physical space requirements.
[0065] As shown in FIG. 1C, there are controllable load switching devices, so the light fixtures can be switched on or off, or possibly even dimmed to a degree at certain hours.
These different states can all be recorded in the baseline values so that the proper comparison is made. For example, if the store closes early on a Sunday, the lights may be turned off, or dimmed at an earlier hour than normal. Thus, the baseline value comparison should be with the ideal desired state of lighting on a Sunday at a certain hour of the day or evening. Thus, not only are power costs saved, but maintenance is improved by the integrated package. It is within the spirit of the invention and the scope of the appended claims to monitor certain zones, and if there is an indication of a malfunction, turn on alternative lighting in the same zone, row, nearby zones, rows, etc.
[0066] The monitoring and controller functions can be performed by software, hardware, firmware, and/or combinations of the above. In a preferred embodiment, microprocessor chips have these functions programmed in (and/or burnt in), but there is also a possibility that software could be provided, and thus a computer might be an integral part of the controller/monitor. Updates might be easier on one system versus another, but in any case the invention provides an automated monitoring (and optionally control) of light fixtures and lighting systems.
[0067] FIG. 1C shows an integrated unit which provides both lighting load switching devices and electrical load power monitoring to continuously monitor lighting performance. The
Lighting Controller and Performance Monitor is an electronic sub-assembly that serves multiple purposes including:
[0068] Automated control of lighting circuit load switching devices through a two-way data link with an energy management system or through control algorithms stored locally within the Lighting Controller and Performance Monitor;
[0069] Automated lighting performance monitoring as described above;
[0070] Automated notification of maintenance personnel via a connected energy management system or through a dedicated data link.
[0071] FIG. ID illustrates a high level block diagram of an embodiment of the remote/local combined power monitoring/controlling device that can be employed to perform the present invention. Remote access to a combined monitor/controller 212 according to the current invention is provided via at least one of a communication line, a wide area network (WAN), and a wired and/or wireless local area network (LAN) 101. The combined monitor/controller 212 typically is a combination of a single controller unit 212a interfaced to a single monitor unit 212b (see, e.g., FIG. IB) and preferably is a single integrated electrical unit 212c (see, e.g., FIG. 1C) that monitors and controls the electrical usage of multiple thermostats 102 and multiple light circuits 103, all supplied power by a common power source 105. Based on measured power consumption and at least one pre-determined algorithm stored onboard, the monitor/controller 212 of the present invention controls the settings of the plurality of thermostats 102 (when and at what temperatures they turn on and off) as well as turning on/off each of the plurality of light circuits 103.
[0072] To perform monitoring/controlling functions the present invention preferably performs one or more of the following functions within an interfaced control unit 212a or preferably within a single integrated electronic unit 212c:
[0073] Directly monitors at least one electrical load;
[0074] Directly monitors at least one environmental variable;
[0075] Provides a selectable local display of the at least one electrical load;
[0076] Provides a selectable local display of the monitored/controlled at least one environmental variable;
[0077] Indirectly monitors other energy loads and variables through electronic interfaces with external monitors;
[0078] Executes at least one embedded control algorithm to automatically determine a control setting for the at least one electrical loads;
[0079] Executes at least one embedded control algorithm to automatically determine a control setting for the at least one environmental variable;
[0080] Control algorithms are downloadable and have downloadable parameters for update and tuning;
[0081] Indirectly controls at least one energy load through communication with at least one external control device (thermostats, relays, etc.);
[0082] Indirectly controls at least one environmental variable through communication with at least one external control device (thermostats, relays, etc.); and
[0083] Communicates with end-users, computers, and external monitoring and control devices through at least one communication media including Token Ring, Internet, Ethernet, modem, and serial data links.
[0084] Thus, the system and method of the present invention may employ a single compact electronic device interfacing/integrating robust communications capabilities and management
(control) functions for at least one of [0085] • at least one energy load; and
[0086] • at least one environmental variable.
[0087] In one aspect, the present invention typically comprises downloadable software, preferably firmware, containing the at least one control algorithm.
[0088] In another aspect, the present invention typically comprises at least multiple analog-to- digital input channels, and optionally comprises at least one of a current input, an optical circuit, an RS-485 output, an RS-232 output, a wireless network interface, and a wired network interface.
[0089] In another aspect, the present invention typically comprises a persistent store for retaining historical data for each monitored load and environmental variable. Retention and purging of these historical data can be controlled remotely and these historical data can be locally displayed.
[0090] The present invention typically multiplexes subloads at a single site across a maximum power usage (pre-set or algorithmically determined) as well as multiplexes loads across multiple networked sites. Wired and wireless network protocols are supported to provide inter-site and intra-site connectivity as well as to provide remote control of devices using standard messaging such as e-mail.
[0091] As illustrated in FIG. 7, systems 700 including single circuit monitors and at least one server 701 that monitor and control multiple electrical loads are well known in the art. Such prior art systems 700 include a plurality of single-circuit (single and poly phase circuits) power monitoring devices (meters) which are periodically interrogated by a host server. The host server 701 uses data from the many power monitoring devices 702 to calculate target setpoints for multiple electrical loads 703 and communicates with a plurality of electrical load control devices 704 to implement the target setpoints (control loads according to the algorithms).
[0092] As illustrated in FIG. 8, the present invention preferably takes advantage of the fact that the power supply for the multiple lighting loads normally comes through a few common power distribution panels 210 (such as circuit breaker panels). The many single-circuit power monitoring devices (traditional approach) are replaced with a few, or just one, multiple-circuit power monitoring controlling device(s) 212 which can significantly reduce the cost, complexity, and physical footprint for the power monitoring component of the energy management system. To this point, most of the energy management systems in use today do not include basic power monitoring due to the cost, complexity, and physical footprint associated with installing multiple single-circuit power monitoring devices (considered too expense to install). As a result, traditional energy management systems cannot make optimal automatic and dynamic control decisions because they do not have real-time power usage data available - resulting in simplistic energy management algorithms that do not realize a significant portion of the potential savings. The preferred advantages of the present invention are significantly based on including an onboard/local multiple circuit power monitoring capability. For example, the present invention may employ a multi-circuit monitor. [0093] The present invention takes advantage of the low-cost, high-performance microprocessors that are readily available today by embedding control algorithms in software locally resident on the device, preferably firmware, directly interfaced with multiple-circuit power monitoring electronics. A device typically is a collection of components in close proximity to each other, e.g., within a single housing or within 5 or less feet apart or within 24 or 12 or less inches apart or within two or more adjacent housings. Traditional energy management systems employ more complex workstation or server class computers and implement the control algorithms in software. These traditional energy management "host" servers are significantly more costly to purchase and operate, are less environmentally rugged, and are subject to many Internet-related security vulnerabilities.
[0094] Although the present device may communicate with a server, typically each device has local processing and memory for implementing one or more control algorithms, rather than using the server for implementing the one or more control algorithms.
Combined Monitor/Controller
[0095] Referring now to FIGs. 2 and 5, a system with embedded control algorithms, that may be empolyed in an embodiment of the present invention, monitors and controls multiple electrical loads of various configurations 510 511 515 516 - including both single 204 and poly-phase applications 203. At least some of the electrical loads are lighting loads. The single monitor/controller 212 is simply wired 209 to common voltages at an electrical distribution panel 210 and can be connected to remote current sensing units 515 to accept power variable measurements. In a preferred embodiment, the monitor/controller 212 of the present invention includes at least one an on-board control algorithm 504 having at least one pre-determined, settable goal. A settable/downloadable threshold is an example of one such goal. The at least one algorithm accepts power 515 and environmental variable 516 measurements as inputs and determines how to control the power consumers 510 and other devices 511 being monitored to achieve at least one goal of the at least one algorithm. [0096] The combined monitor/controller 212 provides advanced sampling, including multiple analog-to-digital converters for fast waveform sampling. All channels (the 12 shown in FIG.
2 are an example only and are not limiting in any sense) 211 are sampled simultaneously so that there is no phase delay introduced as in other systems utilizing sequential sampling techniques. Thus, the monitor/controller 212 of the present invention provides ANSI certified accuracies with harmonic capture and analysis capabilities.
[0097] FIG. 6 A illustrates a schematic diagram of a preferred embodiment of the combination monitor-controller 212 illustrated in FIG. 5.
[0098] Monitor/controller 212 includes a current monitoring interface 610, a voltage monitoring interface 620, an analog-to-digital (AJO) converter 631 (having parts 630 and
634), a high voltage opto-isolator 640, a data flow controller 650, a remote communication interface 660, local control interfaces 670 (FIG. 6D(a)) and 675 (FIG. 6K), and a direct current (dc) power supply 680. Together, these components, in cooperation with external devices, provide a capability to monitor and manage the energy supplied to loads by multiple power circuits.
[0099] Current monitoring interface 610 provides a twelve-channel interface between the power circuits being monitored and electrical A/D converter 631.
[00100] FIGs. 6B and 6C illustrate enlarged views of portions of the current monitoring interface 610 of the combination monitor-controller illustrated in FIG. 6A including low-pass filters 612 A-F shown in FIG. 6B and low-pass filters 612 G-L shown in FIG. 6C.
[00101] Each of the twelve channels is connected to a separate power circuit to monitor the flow of current through the circuit. The connection is made with a current tap at both a supply (i.e., hot) line and a return (i.e., neutral) line of the power circuit using a current transformer. Each current tap provides a waveform signal that is representative of the current flow at the tap point. Together, the supply and return line waveforms of the power circuit provide a differential signal pair representing the current flow through the power circuit and this pair is provided to one channel of current monitoring interface 610. Use of the differential signal waveform is preferred to the use of either one of the individual waveform signals because the individual waveform signals usually have the same noise components superimposed on them and these noise components can be largely eliminated by measuring the differential amplitude between the two individual waveforms.
[00102] For each of the monitored power circuits, the corresponding supply and return waveform signals are filtered and impedance buffered by a low-pass filter 612. [00103] Thereafter, each of the filtered and buffered differential signal pairs is provided to a separate one of twelve corresponding channels of A/D converter section 631. FIG. 6A illustrates analog-to-digital (A/D) converter 631 having portions 630 and 634. [00104] FIG. 6E illustrates an enlarged view of portion 630 of the analog-to-digital
(A/D) converter 631.
[00105] FIG. 6F illustrates an enlarged view of portion 634 of the analog-to-digital
(A/D) converter 631. In particular, FIG. 6F illustrates an enlarged view of an analog-to-digital (A/D) converter 634.
[00106] Accordingly, each one of the twelve A/D converter channels has first and second inputs that respectively receive the filtered and buffered supply and return line waveform signals of the differential signal pair corresponding to one of the twelve power circuits being monitored.
[00107] FIG. 6D(b) illustrates an enlarged view of a voltage monitoring interface 620 of the combination monitor-controller illustrated in FIG. 6A.
[00108] Voltage monitoring interface 620 provides a three-phase interface to a power line supplying power to each of the power circuits being monitored. For each phase of the power line, a voltage tap is provided to communicate a voltage waveform, representing the voltage changes occurring on the phase, to a separate one of three low-pass filters 622. Low- pass filters 622 filter and impedance buffer their respectively received phase voltage waveforms. Thereafter, each of the filtered and buffered phase voltage waveforms is provided to a separate channel of A/D converter 631 shown in FIG. 6E. [00109] A/D converter 631 has three sample and hold (S/H) A/D converters (S/H converters), namely, S/H converters 632-633 shown in FIG. 6E and S/H converter 634 shown in FIG. 6F.
[00110] Each of the S/H converters 632-634 is capable of simultaneously determining six differential analog values and converting these analog values to a digital representation of these values. Each differential value is determined by the amplitude difference between two analog signals provided to the inputs of a channel of S/H converter 632-634. As each of S/H converters 632-634 has six individual channels, a combined total of eighteen differential analog values can be simultaneously determined and converted to digital representations by A/D converter 630.
[00111] Each of the twelve differential signal pairs provided by current monitoring interface 610 is provided to a separate channel of S/H converters 632 and 633. S/H converters 632 and 633 generate digital representations of the waveform differences existing at the pair of current taps for each of the twelve power circuits monitored.
[00112] S/H converter 634 receives each of the three phase voltage waveforms provided by voltage monitoring interface 620 at a separate channel and determines a difference between each phase voltage waveform and a reference waveform.
The determined difference for each channel is converted to a digital representation that reflects the voltage detected at the corresponding phase tap.
[00113] More specifically, S/H converters 632 and 633 receive the filtered and impedance buffered differential signal pairs, representing the supply and return current waveforms, for each of the twelve power circuits interfaced to monitor/controller 212 by current monitoring interface 610. For each of their respective six channels, S/H converters
632 and 633 detect the analog amplitude difference between the channel's corresponding pair of differential signals and convert this difference to a digital value representing the difference.
S/H converters 632 and 633 perform this detection and conversion process repeatedly so that the sequence of digital values produced for each channel provides a representation of the current flow through the corresponding power circuit.
[00114] Similarly, S/H converter 634 receives the filtered and impedance buffered phase voltage waveforms representing the voltage waveforms of the three-phase power line.
S/H converter 634 detects the analog amplitude difference of each phase voltage waveform, with respect to a reference waveform, at a point in time and converts this amplitude difference to a digital representation of the difference. S/H converter 634 performs this detection and conversion process repeatedly so that the sequence of digital values produced for each channel provides a representation of the voltage waveform at the corresponding phase of the power line.
[00115] High voltage opto-isolator 640 receives and buffers the digital values produced by S/H converter 634 and communicates the buffered digital values as data to other components of monitor/controller 212, through optically-coupled data line drivers 642.
[00116] FIG. 6G illustrates an enlarged view of a portion 640 of the combination monitor-controller 212 illustrated in FIG. 6 A including the high voltage opto-isolator and a portion of a data flow controller.
[00117] FIG. 6H illustrates an enlarged view of a portion 650 of the data flow controller not illustrated in FIG. 6G. FIG. 6H illustrates an enlarged view another local interface 650 of the combination monitor-controller 212. [00118] The electrical signal isolation provided by line drivers 642 (FIG. 6G) is desirable for electrically isolating monitor/controller 212's low- voltage components, which receive the digital data representing the phase voltage waveforms, from the components that may directly or indirectly receive the high voltage present at the phase taps of the high voltage (e.g., 480 VAC) power line.
[00119] The data flow controller controls the flow of specific data and control signals among the components of monitor/controller 212 and between these components and external devices. This control is provided by an address decoder 652 (FIG. 6H) and several bus buffers/line drivers 654 (FIGs. 6G and 6H).
[00120] Address decoder 652 decodes a three-bit encoded value provided by an address bus and selects one of eight prospective addresses identified by the encoded value. The selected address is communicated internally within monitor/controller 212 and externally, as necessary, to control the flow of specific data and control signals within monitor/controller 212. Bus buffers/line drivers 654 cooperate with address decoder 652 and other components of monitor/controller 212 to receive or transmit the specific data and control signals. [00121] External devices (illustrated in FIG. 5) that communicate data or control signals to components of monitor/controller 212 may include a touchscreen device 517, a microprocessor 518, a communication modem 514, and environmental monitoring and control devices 511 516. The optional touchscreen device 517 displays specific data and control signals communicated through monitor/controller 212 and conveys user commands to monitor/controller 212. The microprocessor 518 provides the processing capability to determine operational characteristics of the monitored power line and each of the monitored power circuits, based on the data generated by A/D converter 630. Additionally, the microprocessor 518 provides general control and communication functionality for monitor/controller 212 and the external devices to which it is connected. The communication modem 514 supports communication between the microprocessor 518 and remotely located devices. The environmental monitoring and control devices 511 516 monitor and control environmental systems that may affect the operational characteristics of the power line or its associated power circuits.
[00122] FIGs. 61 and 6 J illustrate enlarged views of portions 660a and 660b of a remote communication interface 660 of the combination monitor-controller illustrated in FIG. 6A. [00123] Remote communication interface 660 provides an interface for modem, RS-
232, and RS-485 communications between external devices that are connected to monitor/controller 212. RS-485 transceivers 662 and 663 (FIG. 6J) receive and drive communication signals in accordance with RS-485 specifications. Similarly, RS-232 transceiver 664 (FIG. 61) receives and drives communication signals in accordance with RS- 232 specifications. Octal buffer/line drivers 665 (FIG. 61) and 666 (FIG. 6J) buffer and drive specific data and control signals conveyed through communication section 660. [00124] FIG. 6D(a) illustrates an enlarged view of a local control interface 670, and a direct current power supply 680 of the combination monitor-controller illustrated in FIG. 6A. [00125] Local control interface 670 provides an opto-isolated communication interface between local environmental devices and monitor/controller 212. Local control interface 685 provides a 5 Vdc switched output to an external device and is preferably used to operate a display light of the touchscreen device 517.
[00126] Power supply 680 receives energy from an alternating current source and converts this energy for provision within monitor/controller 212 by regulated 5 Vdc and 3.3 Vdc sources.
[00127] FIG. 6K illustrates an enlarged view another local interface 675 of the combination monitor-controller illustrated in FIG. 6A. Local interface 675 communicates with portion 650 of the data flow controller.
[00128] In a preferred embodiment, the current inputs 202 are designed with instrumentation amplifiers. Full differential inputs are utilized to achieve the best signal conditions and noise rejection.
[00129] In a preferred embodiment, the potential inputs employ optical circuitry to provide high accuracy and isolation. The monitor/controller 212 accepts polyphase inputs including at least one of 120/277 volts (3 phase/4 wire) and 480 volts (3 phase/3 wire) 203. Single phase inputs to 480 volts 209 are acceptable.
[00130] In a preferred embodiment, the monitor/controller 212 comprises a plurality of digital inputs and outputs, serial ports and can be configured for a plurality of communication protocols. The plurality of serial ports further comprises at least two RS-485 ports and at least one RS-232 port. The plurality of protocols includes ModBus TCP/IP ASCII/RTU, 514 [00131] In an embodiment, the monitor/controller 212 manages HVAC and the at least one algorithm comprises "setback" scheduling 512. Environmental measurements 516 include trending temperatures through at least one of a thermostat and at least one wireless sensor. The at least one algorithm further provides demand control of a plurality of sub-loads. Wireless sensor measurements include ambient, freezer/cooler and HVAC duct temperatures. Monitoring and control variables 516 for HVAC include temperature and humidity. A persistent store 503 is provided for long term storage of measurements (e.g., load profiles) and optionally downloadable firmware/software executed by a microprocessor 518. In an alternative embodiment, the downloadable firmware is stored in a microprocessor 518. A listing of typical firmware/software is included in Appendix A. Typically, storage comprises at least one of SRAM and flash memory and at least 128Kb of SRAM and 256 Kb of flash memory is provided.
[00132] In a preferred embodiment the monitor/controller 212 is configured to count pulses, sense contact status, and provide output alarming notification 513 on at least one input (pre-determined and downloadable) threshold 512 and the at least one input threshold 512 can be reset from a remote location 205 206 using the at least one communication media 514. The communication media 514 provide the monitor/controller 212 with the ability to poll different devices 205, log data and transmit data to other systems under the direction of downloadable software that is executed by the monitor/controller 212 to capture data, e.g., as input to algorithms executed by the monitor/controller 212. The captured data is maintained on-board for extended periods of time in a persistent store 503 to provide historical load profile data and is remotely retrievable by other devices 205 and a facility manager/operator 206 using any of a plurality of included communication protocols 514.
[00133] In a preferred embodiment, referring now to FIG. 5, the monitor/controller 212 can be configured via an embedded Web server, or a PC/laptop running configuration software by a facility manager/operator 206 or by an inter-connected device 205. The configuration can be accomplished via local downloads via an at least one RS-232 port or remotely via downloads using a modem or network 514. Communication features 514 of the monitor/controller 212 include on-board Ethernet, embedded Web server, Embedded e-mail client, at least one serial data port, on-board modem, Modbus/485 and Modbus/IP, Xmodem file transfer.
[00134] In an embodiment, a local display that is preferably a touch screen 517 provides local viewing of at least one of energy data, waveforms, and configuration parameters.
[00135] The system and method of the present invention thus supports on-board advanced control algorithms for energy management, e.g., demand control, and provides interfaces to load control devices such as communicating thermostats.
Multi-Site Embodiment
[00136] In one aspect, referring again to FIGs. 3 and 5, an inter-connected embodiment
(e.g., wide-area connectivity 207) of the present invention serves to permit remote management 512 of a plurality of monitor/controllers 212 and facilitates timely delivery of alarm/alert type reports 513.
[00137] Further, multiple-site connectivity allows at least one designated remote site to be designated a master site 212 and be able to retrieve data from many other sites 212 for centralized analysis and reporting (processing that requires more processing resources than practical to include at each site). The master site designation can be done dynamically and made dependent on conditions of the plurality of such sites, their usage of power, and any other pre-determined criteria.
[00138] Centralized analysis allows predictive/preventive maintenance. Centralized reporting provides operational data summaries for the many sites 212 within one report. WAN connectivity is only one example of the connectivity possible and is intended to aid discussion rather than limit the present invention. Among other possible connectivity modalities are wired and wireless networks including IEEE 802.11, LANs, and, depending on the distance between monitor/controllers, may include localized wireless networks such as Bluetooth. Any protocol can be supported since the procedures needed to accommodate a protocol can be downloaded to each affected monitor/controller 212 and therefore can be updated as needed. This flexibility to change and update the software/firmware executed by a monitor/controller 212 is a key distinguishing feature of the system and method of the present invention and contributes to robustness, longevity and applicability of the present invention to a broad spectrum of power management and control scenarios.
[00139] As illustrated in FIG. 3, a plurality of power distribution panels 210 each having at least one controllable load 308, are inter-connected by and coupled to a monitor/controller 212 to monitor and control major loads 202 and perform direct bus voltage measurements 209. As also illustrated in FIG. 3, each monitor/controller 212 comprises embedded firmware (including control algorithms) and are further each coupled to a data link 206 208 for inter-connectivity and centralized control/monitoring 207. Major loads 202 comprise controllable loads 308 and include at least devices such as heating/cooling devices, lighting, fans, humidifϊers/dehumidifϊers, and motors, compressors, production line drives. [00140] In another aspect, the present invention employs at least one energy management strategy that further leverages having multiple sites 212 in an inter-connected system 207. For purposes of example and discussion only, in a wide area network, such a management strategy may include the following options:
[00141] (1) Using aggregated load data from total electrical load measurements at each monitored/controlled facility to negotiate with electric utility companies using the aggregated power grid 301 load instead of the many smaller constituent loads, i.e., to secure more favorable rates as a larger load customer; and
[00142] (2) Using inter-connectivity 207 to curtail designated interruptible loads in each facility (such as pre-determined fraction of a facility's lighting) during periods of peak electrical demand on the utility power grid — thus taking advantage of lower electricity rates that may be associated with interruptible tariffs.
[00143] While availability of the foregoing strategies depends upon the particular electric utility serving the sites, and the "state" of electric power industry deregulation at a point in time, the system and method of the present invention includes flexible, e.g., downloadable over the inter-connectivity means 207, data gathering and control functions for accomplishing energy management strategies. In situations where option (1) above can be applied (getting the utility to accept and treat the aggregated impact of many small loads as a single large load), the system and method of the present invention then minimizes the peak demand of that single large load by "multiplexing" across sites 212 to significantly reduce energy cost - much like the multiplexing within a given site accomplished by a single monitor/controller 212 for local sub-loads.
ONBOARD ALGORITHMS
[00144] The following algorithms comprise the embedded control algorithms of each power monitor and management device 212. These algorithms are presented for discussion only and not in any limiting sense. They are examples only of the types of embedded algorithms suited for monitoring and control but one skilled in the art will appreciate that the present invention is not limited to the following algorithm example discussions.
1. Waveform Sampling and Power Calculations
[00145] In a preferred embodiment, all voltage (x3) and current (xl2 or x33) waveforms are simultaneously and continuously sampled to collect and store a plurality of M samples (M typically is 64) over one full power grid sinusoidal waveform cycle (typically a time period of 16.67 milliseconds for a 60 Hz power system). Voltage waveforms are then additionally sampled to collect a total of N samples (N typically is 80) over one plus X sinusoidal waveform cycles (X typically is 1A). Various electrical power data values are then calculated using the previously collected samples as follows:
[00146] 1.1 Calculated per cycle RMS (root mean squared) unsealed values :
[00147] 1.1.1. Voltage phase to neutral (x3) [00148] 1.1.2. Voltage phase to phase (x3)
[00149] 1.1.3. Per phase load current (xl2 or x33)
[00150] 1.1.4. Per phase real power (watts - xl2 or x33)
[00151] 1.1.5. Per phase reactive power (vars - xl2 or x33). Reactive power is calculated using voltage and current samples that are offset in time by the equivalent of 90 degrees phase angle, thus the need for additional voltage waveform samples (80 versus 64).
[00152] The above sampling and calculation process is repeated at least K times per second
(K typically is 7), with the results of each repetition used to derive one second average values.
[00153] A one second average derived from the above per cycle RMS values are scaled to appropriate engineering units and used to further derive one second values for per phase apparent power (VA) and per phase power factor (PF), resulting in the following:
[00154] 1.2 Calculated one second RMS scaled values:
[00155] 1.2.1 All above per cycle values
[00156] 1.2.2 Virtual load real power (virtual = summations of 1.1.4 above)
[00157] 1.2.3 Virtual load reactive power (summations of 1.1.5 above)
[00158] 1.2.4 Per phase and fixed three phase total load apparent power (VA)
[00159] 1.2.5 Per phase and fixed three phase total load power factor (PF)
[00160] Stored un-scaled waveform values (1.1 above) are also used to derive the following total harmonic distortion data:
[00161] 1.3 Total Harmonic Distortion (THD) values:
[00162] 1.3.1 Voltage phase to neutral (x3)
[00163] 1.3.2 Per phase load current (xl2 or x33)
[00164] One cycle THD values are derived for each of the above values approximately once every Y seconds (Y typically is 2).
2. Peak Electrical Demand Control
[00165] Electric power control routines are available to limit peak electrical demand (kw), including the following:
[00166] 2.1 Evening Light Load Demand Control
[00167] This algorithm limits the total electrical demand for a facility by limiting the load associated with heating/cooling during evening periods when lighting load is significantly increased by the addition of parking lot and building signage lights. This algorithm is applicable to facilities where heating/cooling is handled by multiple individually controllable heating/cooling units - typically referred to as roof top units (RTUs), e.g., air conditioners, and any other type of electrical load that is suitable for control such as fans and motors. [00168] For periods of time during which additional evening lighting is required, at least one RTU that has been identified as an at least one lowest priority unit (least critical to maintaining environmental comfort), is automatically switched off for the reminder of the evening lighting time period (7:00PM to facility e.g., a predetermined interval of, say 15, 30, or 60 minutes, depending upon the specific utility tariff) is predicted to exceed the highest peak demand for any previous demand interval during that day, additional RTUs can be temporarily switched off for the remainder of each demand interval as required to keep the peak demand from exceeding the previous peak for that day. RTUs can be prioritized such that units of lesser importance are switched off first. Critical RTUs may not be included in the demand limiting control scheme. [00169] 2.2 RTU Multiplexing Demand Control
[00170] This algorithm is applicable to facilities where heating/cooling is handled by multiple individually controllable roof top units (RTUs), and can be used in conjunction with the algorithm of 2.1 above for evening light load demand control. This algorithm continuously limits the total electrical demand for a facility by coordinating the operation of all RTUs such that only a limited number of RTUs are drawing full load at any point in time, while allowing all RTUs to operate periodically. This is in contrast to multiplexing where each RTU would take its turn operating.
[00171] With this algorithm, RTUs can be grouped for time-shared operation
(multiplexing). Each group is allowed to operate at normal setpoint targets for a limited period of time, followed by a period during which the setpoint target is significantly raised such that RTUs in this group do not draw full electrical load under normal conditions. Groups are coordinated in operation such that one group is operating at normal setpoint targets while other groups are operating with temporarily raised setpoints.
[00172] For example, consider a facility with six RTUs. With this control scheme, two
RTUs might be identified as highly important to environmental comfort, and are allowed to always operate at the facility's target temperature for cooling, such as 74 degrees F. The other four RTUs are divided into two groups of two RTUs, referred to as Group 1 and Group 2. Each group alternates between 20 minute periods of operation at the normal setpoint of 74 degrees, and 20 minute periods of operation at a raised setpoint of 77 degrees. Group 1 operates normally while Group 2 operates at a raised setpoint, and then groups alternate setpoint positions. As a result, only four of six RTUs operate at full load at any moment in time.
[00173] This technique can be used to limit RTU operation in any combination that is determined to be appropriate for a given facility.
3. Solar Calculator For Lighting Control with Photo sensor Override
[00174] This algorithm uses the geographical latitude and longitude of a facility to automatically calculate the sunrise and sunset time for a particular calendar day — to determine when external lighting should be switched on and off. Input from a photo sensor is also used to automatically turn lights on and off in response to unexpected darkness.
4. Instantaneous Power Derived From Energy Pulses
[00175] This algorithm measures the time duration between energy pulses (kwh) from traditional electric power meters to determine instantaneous power (kw). Instantaneous power values are needed for real time control algorithms such as the foregoing. This algorithm allows existing electric meters equipped with pulse outputs to be used in such control schemes, thus leveraging a facility's installed power management and control infrastructure.
5. Firmware Program Flow Description
[00176] The algorithms are part of the software/firmware that determines the operation of a monitor/controller 212 according to the present invention.
[00177] Referring now to FIGs. 4A, 4B and 4C, at the highest level, the firmware processing/logic flow is a main program loop [while (1) program loop within mainQ] that executes continuously, except when execution is preempted by the following hardware-based interrupt service routines:
[00178] • Periodically by hardware timer interrupt timerbjsr, which primarily handles analog to digital conversion processing at the chip level (read _ads7864 and read_sb)
- reads and stores raw A/D values for processing by other routines.
[00179] • Periodically by hardware timer interrupt app_timer_interrupt, which primarily handles the following processing:
[00180] 1. Modem ring detect
[00181 ] 2. Modbus protocol timer
[00182] 3. Lighting control protocol timer
[00183] 4. Reading hardware status inputs [00184] 5. File transfer timer
[00185] • Asynchronously by various serial data port hardware interrupts to process incoming and outgoing characters on these ports.
6. Firmware Overview
[00186] Referring now to FIGs. 4A, 4B and 4C, an example of a downloaded software/firmware begins by initialized memory and hardware, including hardware interrupts at step 401. Once the processing is initialized at step 401, the process returns to step 402 at which the central ongoing housekeeping functions are performed:
[00187] • the onboard heartbeat is toggled;
[00188] • time-of-day events are handled as required, e.g., detecting changes in daylight savings time (DST) and making adjustments accordingly; [00189] • compensation is made for drift of the onboard clock;
[00190] • modem and Modbus timers are processed; and
[00191] • regularly scheduled e-mail reports are generated.
[00192] Next, at step 403 end-of-interval processing is accomplished, e.g., by calling the appropriate routines in a load profile library (Ip. lib). Then, cycle data and per second scaled data is calculated by invoking routines in the adm7864 library at steps 404 and 405, respectively. Total harmonic distortion is calculated at step 406.
[00193] Next, power is determined from the timing of energy pulses coming from external meters (if any) at step 407, and any requests from ModBus external masters are processed at step 408.
[00194] Then, if Ethernet support is enabled socket-level processing is performed comprising for at least two Telnet sessions, Modbus over TCP/IP, and an embedded Web server at step 409. At step 450, if Web server support is also enabled, HTTP requests/responses are processed, and at step 451 web_server_loop is called to store new date and time values for use within web pages. If e-mail support is enabled then e-mail is processed at step 452. E-mail processing includes a) accessing the designated POP3 server to check for new incoming messages, b) interpreting the content of any new messages to queue up response report generation, c) building any e-mail reports that are queue up for processing, and d) accessing the designated SMTP server to send any reply messages that are ready for transmission.
[00195] At step 453, RS-232 port processing is performed to process incoming maintenance port request message strings, and prepare appropriate response message strings. [00196] At step 454 any enabled modem support is performed. This support includes handling of modem connection and processing request and response message strings.
[00197] If there is a touch screen 517 it is services by calling lcdtick at step 455 to look for input from the touch screen (operator touch) and to update the touch screen graphical display 517 as necessary.
[00198] If there are thermostats being managed then they are serviced by calling Tstats at step 456 to read environmental variables and thermostat settings, and to update thermostat setpoints as dictated by various control algorithms.
[00199] Finally, any required lighting control support is performed by calling controlfunction within contol.lib at step 457 to turn on or off multiple lighting zones as dictated by various control algorithms.
[00200] The processing loops around to step 402, performing this loop of steps continuously unless interrupted by a higher priority task. After servicing the higher priority task, control is returned to the interrupted step until another higher priority task needs servicing by the processor.
[00201] FIGs. 9 and 10 show photographs of an ADM-3311 Multi-Circuit Power
Monitor, available from ADMMicro, LLC, Roanoke, Virginia, suitable for containing firmware according to the present invention.
[00202] FIGs. 11 and 12 show photographs of an ADM- 1204 Multi-Circuit Power
Monitor, available from ADMMicro, LLC, Roanoke, Virginia, suitable for containing firmware according to the present invention.
[00203] While preferred embodiments have been shown and described, various modifications and substitutions may be made thereto without departing from the spirit and scope of the present invention. Accordingly, the present invention is limited to the scope of the appended claims, and the present invention has been described by way of illustrations and not limitations.

Claims

WE CLAIM:
1. An energy performance monitoring device, comprising: a monitor module for directly monitoring energy usage as a form of power of at least one energy load by generating at least one measurement of energy usage of said at least one energy load at predetermined intervals; and a storage module for storing a baseline value of energy usage of said at least one energy load at one or more of said predetermined intervals; a comparator module for comparing said at least one measurement of energy usage generated by the monitor module that monitors said at least one energy load with the baseline value of energy usage to determine whether a predetermined threshold has been reached; said predetermined threshold associated with a power usage when one or more energy loads malfunction or are not operational, and a notification module for providing notification that said at least one energy load has malfunctioned during use or is not operational based on a change in energy usage.
2. The energy performance monitoring device according to claim 1, wherein the comparator compares the energy measurement with a baseline value dynamically upon generation of the energy measurement by the monitor module.
3. The energy performance monitoring device according to claim 1, wherein the storage module comprises storage selected from the group consisting of cache storage, secondary storage, and tertiary storage.
4. The energy performance monitoring device according to claim 1, wherein the notification module sends at least one of an email, rf message, text message, and an alarm message to a recipient remote from said device.
5. The energy performance monitoring device according to claim 1, wherein said at least one energy load includes at least one lighting device.
6. An integrated light performance monitoring device and controller, comprising: a monitor module for directly monitoring energy usage as a form of power of at least one energy load by generating at least one measurement of energy usage of said at least one energy load at predetermined intervals; and a storage module for storing a baseline value of energy usage of said at least one energy load at a one or more of said predetermined intervals; a comparator module for comparing said at least one measurement of energy usage of said at least one energy load being generated by the monitor module with a baseline value of energy usage to determine whether a predetermined threshold has been reached; said predetermined threshold associated with a power usage when said at least one energy load malfunctions or is not operational, and a notification module for providing notification that said at least one energy load has malfunctioned during use or is not operational based on a change in energy usage; and a control module operatively coupled to the monitor module for controlling energy usage by the at least one energy load according to said at least one measurement of energy usage, wherein said control module controls said at least one energy load via a data link.
7. The device of claim 6, wherein said control module includes at least one locally stored software and/or firmware executed by said control module for controlling said at least one energy load according to said at least one measurement of energy usage.
8. A light performance monitoring and control system, comprising: a plurality of light performance monitoring devices including:
(i) a monitor module for directly monitoring energy usage as a form of power of at least one energy load by generating at least one measurement of energy usage of said at least one energy load at predetermined intervals; and
(ii) networking means resident in each of said plurality for communicating among said plurality of light performance monitoring devices; a controller device including: a storage module for storing a baseline value of energy usage of said at least one energy load at a one or more of said predetermined intervals; a comparator module for comparing said at least one measurement of energy usage generated by the monitor module that monitors said at least one energy load with the baseline value of energy usage to determine whether a predetermined threshold has been reached; said predetermined threshold associated with a power usage when said at least one energy load has malfunctioned or is not operational; a control module operatively coupled to the monitor module for controlling energy usage by the at least one energy load according to said at least one measurement of energy usage, wherein said control module controls said at least one energy load via a data link.
9. A method for light performance monitoring, comprising: monitoring energy usage directly as a form of power of at least one energy load and generating at least one measurement of energy usage by said at least one energy load at predetermined intervals; and storing a baseline value of energy usage of said at least one energy load at one or more of said predetermined intervals; comparing a measurement of energy usage with the baseline value and determining whether a predetermined threshold has been reached, wherein said predetermined threshold is associated with a power usage when said at least one energy load has malfunctioned or is not operational, and providing notification that an energy load has malfunctioned during use or is not operational based on a change in energy usage.
10. The method according to claim 9, wherein the comparing of the energy measurement with the baseline value is performed dynamically upon generating said energy measurement.
11. The method according to claim 9, wherein the baseline value is stored in one of cache storage, secondary storage, and tertiary storage.
12. The method according to claim 9, wherein the comparing of the energy measurement with the baseline value is performed by a comparator module.
13. The method according to claim 9, further comprising providing notification that said at least one energy load has malfunctioned or is not operational.
14. The method according to claim 13, further comprising controlling energy usage of said at least one energy load according to said energy measurement.
15. The method according to claim 13, wherein said at least one energy load includes at least one lighting device.
16. The method according to claim 14, wherein the step of monitoring energy usage is performed by a monitor module, and the step of controlling said at least one energy load is performed by a control module operatively coupled to the monitor module.
17. The method according to claim 16, further comprising the sub-step of said control module controlling energy usage by said at least one energy load via a data link.
18. The method according to claim 16, further comprising monitoring energy usage directly as a form of power of a plurality of energy loads by a plurality of respective monitor modules.
19. The method according to claim 18, wherein communicating among the plurality of monitor modules occurs over a network.
20. The method according to claim 19, wherein the control module communicates with the plurality of monitor modules to control a plurality of energy loads.
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Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB2452314A (en) * 2007-08-31 2009-03-04 Cp Electronics Ltd Calculating the individual energy usage of lights controlled and monitored by a lighting controller
WO2009066234A2 (en) 2007-11-21 2009-05-28 Philips Intellectual Property & Standards Gmbh Light management system with an integrated energy function
CN102541033A (en) * 2012-02-13 2012-07-04 无锡泰克塞斯新能源科技有限公司 Tracking type photovoltaic power generation system capable of preventing disastrous weathers and implementation method thereof
US9468079B2 (en) 2009-07-24 2016-10-11 Koninklijke Philips N.V. Lighting system and a method for determining the energy consumption of a lighting system

Families Citing this family (103)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7623042B2 (en) * 2005-03-14 2009-11-24 Regents Of The University Of California Wireless network control for building lighting system
US7429828B2 (en) * 2005-06-30 2008-09-30 Streetlight Intelligence, Inc. Method and system for luminance characterization
CA2656177C (en) 2005-06-30 2015-04-21 Streetlight Intelligence, Inc. Adaptive energy performance monitoring and control system
US7706928B1 (en) 2005-09-07 2010-04-27 Admmicro Properties, Llc Energy management system with security system interface
US20150187209A1 (en) * 2006-01-31 2015-07-02 Sigma Designs, Inc. Method and system for synchronization and remote control of controlling units
US10326537B2 (en) 2006-01-31 2019-06-18 Silicon Laboratories Inc. Environmental change condition detection through antenna-based sensing of environmental change
US10277519B2 (en) 2006-01-31 2019-04-30 Silicon Laboratories Inc. Response time for a gateway connecting a lower bandwidth network with a higher speed network
US8290710B2 (en) * 2007-09-07 2012-10-16 Led Roadway Lighting Ltd. Streetlight monitoring and control
US8570190B2 (en) 2007-09-07 2013-10-29 Led Roadway Lighting Ltd. Centralized route calculation for a multi-hop streetlight network
AT505882A1 (en) * 2007-10-03 2009-04-15 Hierzer Andreas MOTORIZED LIGHT
US8255090B2 (en) * 2008-02-01 2012-08-28 Energyhub System and method for home energy monitor and control
US20110061014A1 (en) 2008-02-01 2011-03-10 Energyhub Interfacing to resource consumption management devices
US8520721B2 (en) 2008-03-18 2013-08-27 On-Ramp Wireless, Inc. RSSI measurement mechanism in the presence of pulsed jammers
US8958460B2 (en) 2008-03-18 2015-02-17 On-Ramp Wireless, Inc. Forward error correction media access control system
US8477830B2 (en) * 2008-03-18 2013-07-02 On-Ramp Wireless, Inc. Light monitoring system using a random phase multiple access system
US8552664B2 (en) 2008-04-14 2013-10-08 Digital Lumens Incorporated Power management unit with ballast interface
US10539311B2 (en) 2008-04-14 2020-01-21 Digital Lumens Incorporated Sensor-based lighting methods, apparatus, and systems
US8805550B2 (en) 2008-04-14 2014-08-12 Digital Lumens Incorporated Power management unit with power source arbitration
US8543249B2 (en) 2008-04-14 2013-09-24 Digital Lumens Incorporated Power management unit with modular sensor bus
US8339069B2 (en) 2008-04-14 2012-12-25 Digital Lumens Incorporated Power management unit with power metering
US8610377B2 (en) 2008-04-14 2013-12-17 Digital Lumens, Incorporated Methods, apparatus, and systems for prediction of lighting module performance
US8531134B2 (en) 2008-04-14 2013-09-10 Digital Lumens Incorporated LED-based lighting methods, apparatus, and systems employing LED light bars, occupancy sensing, local state machine, and time-based tracking of operational modes
US8368321B2 (en) 2008-04-14 2013-02-05 Digital Lumens Incorporated Power management unit with rules-based power consumption management
US8754589B2 (en) 2008-04-14 2014-06-17 Digtial Lumens Incorporated Power management unit with temperature protection
US8866408B2 (en) 2008-04-14 2014-10-21 Digital Lumens Incorporated Methods, apparatus, and systems for automatic power adjustment based on energy demand information
US8610376B2 (en) * 2008-04-14 2013-12-17 Digital Lumens Incorporated LED lighting methods, apparatus, and systems including historic sensor data logging
US8823277B2 (en) 2008-04-14 2014-09-02 Digital Lumens Incorporated Methods, systems, and apparatus for mapping a network of lighting fixtures with light module identification
US20120235579A1 (en) 2008-04-14 2012-09-20 Digital Lumens, Incorporated Methods, apparatus and systems for providing occupancy-based variable lighting
US8373362B2 (en) 2008-04-14 2013-02-12 Digital Lumens Incorporated Methods, systems, and apparatus for commissioning an LED lighting fixture with remote reporting
US8841859B2 (en) 2008-04-14 2014-09-23 Digital Lumens Incorporated LED lighting methods, apparatus, and systems including rules-based sensor data logging
US20100114340A1 (en) 2008-06-02 2010-05-06 Charles Huizenga Automatic provisioning of wireless control systems
US7839017B2 (en) * 2009-03-02 2010-11-23 Adura Technologies, Inc. Systems and methods for remotely controlling an electrical load
US8275471B2 (en) 2009-11-06 2012-09-25 Adura Technologies, Inc. Sensor interface for wireless control
US8364325B2 (en) 2008-06-02 2013-01-29 Adura Technologies, Inc. Intelligence in distributed lighting control devices
US20100145884A1 (en) * 2008-12-04 2010-06-10 American Power Conversion Corporation Energy savings aggregation
US8200370B2 (en) * 2008-12-04 2012-06-12 American Power Conversion Corporation Energy reduction
US8180824B2 (en) * 2009-02-23 2012-05-15 Trane International, Inc. Log collection data harvester for use in a building automation system
CN101493202B (en) * 2009-03-06 2014-05-07 北京中庆微数字设备开发有限公司 Brightness adjustable luminous indicator
US8363699B2 (en) 2009-03-20 2013-01-29 On-Ramp Wireless, Inc. Random timing offset determination
US8954170B2 (en) 2009-04-14 2015-02-10 Digital Lumens Incorporated Power management unit with multi-input arbitration
US8593135B2 (en) 2009-04-14 2013-11-26 Digital Lumens Incorporated Low-cost power measurement circuit
US8536802B2 (en) 2009-04-14 2013-09-17 Digital Lumens Incorporated LED-based lighting methods, apparatus, and systems employing LED light bars, occupancy sensing, and local state machine
US11269303B2 (en) 2009-06-22 2022-03-08 Johnson Controls Technology Company Systems and methods for detecting changes in energy usage in a building
US10739741B2 (en) * 2009-06-22 2020-08-11 Johnson Controls Technology Company Systems and methods for detecting changes in energy usage in a building
US8600556B2 (en) 2009-06-22 2013-12-03 Johnson Controls Technology Company Smart building manager
US9196009B2 (en) * 2009-06-22 2015-11-24 Johnson Controls Technology Company Systems and methods for detecting changes in energy usage in a building
CH701506A1 (en) * 2009-07-30 2011-01-31 Alstom Technology Ltd The method for the early detection and proactive Mastering consumer end load shedding in an electrical network and apparatus for performing the method.
US20110071952A1 (en) * 2009-09-18 2011-03-24 Gaffney Michael P System and method of optimizing resource consumption
US8554388B2 (en) * 2009-11-06 2013-10-08 Jeffrey Kibbie Power intervening and management panel, system and method for a power control panel
JP5502504B2 (en) * 2010-01-25 2014-05-28 株式会社東芝 Substation automatic control system
WO2011153401A2 (en) * 2010-06-04 2011-12-08 Sensus Usa Inc. Method and system for non-intrusive load monitoring and processing
US10044402B2 (en) 2010-06-25 2018-08-07 Enmodus Limited Timing synchronization for wired communications
GB2481579B (en) 2010-06-25 2014-11-26 Enmodus Ltd Monitoring of power-consumption
MX2013001013A (en) * 2010-07-30 2013-03-07 Leviton Manufacturing Co Distributed control system operation and configuration.
MX2013001016A (en) 2010-07-30 2013-02-27 Leviton Manufacturing Co Distributed control system operation and configuration.
US9000675B2 (en) * 2010-09-21 2015-04-07 Avago Technologies General Ip (Singapore) Pte. Ltd. Transmitting and receiving digital and analog signals across an isolator
US8462003B2 (en) 2010-09-21 2013-06-11 Avago Technologies General Ip (Singapore) Pte. Ltd. Transmitting and receiving digital and analog signals across an isolator
US8847503B2 (en) 2010-09-21 2014-09-30 Avago Technologies General Ip (Singapore) Pte. Ltd. Transmitting and receiving digital and analog signals across an isolator
JP2012105523A (en) * 2010-10-15 2012-05-31 Sony Corp Communication device, power distribution control device and power distribution control system
CA3043404A1 (en) 2010-11-04 2012-05-10 Digital Lumens Incorporated Method, apparatus, and system for occupancy sensing
US8374728B2 (en) * 2010-12-22 2013-02-12 Lg Electronics Inc. Power management apparatus for controlling consumption power and method of operating the same
US8666685B2 (en) * 2011-04-19 2014-03-04 Schneider Electronic IT Corporation System of intelligent sensors in an electrical panelboard
US8660810B2 (en) 2011-04-19 2014-02-25 Schneider Electric It Corporation System and method to calculate RMS current and true power in a multidrop sensor network
US9146259B2 (en) 2011-04-19 2015-09-29 Schneider Electric It Corporation Smart current transformers
DE112012001781B4 (en) 2011-04-20 2023-05-04 Tridonic Gmbh & Co Kg LED lighting system and addressing method for an LED lighting system
US11183843B1 (en) 2011-05-26 2021-11-23 J. Carl Cooper Power source load control
US11522365B1 (en) 2011-05-26 2022-12-06 J. Carl Cooper Inverter power source load dependent frequency control and load shedding
US10879727B1 (en) * 2011-05-26 2020-12-29 James Carl Cooper Power source load control
US9122285B2 (en) * 2011-07-08 2015-09-01 Sharp Laboratories Of America, Inc. Virtual thermostat system and method
US8593268B2 (en) * 2011-08-08 2013-11-26 Vincent Valetutti Time clock control for outside lighting
AU2012332206B2 (en) 2011-11-03 2016-02-04 Osram Sylvania Inc. Methods, systems, and apparatus for intelligent lighting
US9192019B2 (en) 2011-12-07 2015-11-17 Abl Ip Holding Llc System for and method of commissioning lighting devices
CN106937459B (en) 2012-03-19 2020-06-16 数字照明股份有限公司 Method, system and apparatus for providing variable illumination
EP2836848B1 (en) 2012-04-12 2020-04-01 Schneider Electric IT Corporation System and method for detecting branch circuit current
AU2012378295B2 (en) 2012-04-25 2017-04-13 Schneider Electric It Corporation Current monitoring device
CN103558809B (en) * 2012-05-09 2019-06-18 布里斯托尔D/B/A远程自动化解决方案公司 The method and apparatus of configuration process control equipment
US9390388B2 (en) 2012-05-31 2016-07-12 Johnson Controls Technology Company Systems and methods for measuring and verifying energy usage in a building
DE102012113116B4 (en) * 2012-12-27 2014-09-18 Georg Bernitz Input / output device and communication system
ES2743697T3 (en) 2012-12-27 2020-02-20 Schneider Electric Usa Inc Power meter with current and phase sensor
US20140228993A1 (en) * 2013-02-14 2014-08-14 Sony Europe Limited Apparatus, system and method for control of resource consumption and / or production
EP2992395B1 (en) 2013-04-30 2018-03-07 Digital Lumens Incorporated Operating light emitting diodes at low temperature
CA2926260C (en) 2013-10-10 2023-01-24 Digital Lumens Incorporated Methods, systems, and apparatus for intelligent lighting
US9973036B2 (en) 2013-12-31 2018-05-15 Schneider Electric It Corporation Automatic sub-millisecond clock synchronization
US10637681B2 (en) 2014-03-13 2020-04-28 Silicon Laboratories Inc. Method and system for synchronization and remote control of controlling units
US9531280B2 (en) 2014-05-09 2016-12-27 Avago Technologies General Ip (Singapore) Pte. Ltd. Isolation device and system
CN105092999B (en) 2014-05-19 2017-12-12 罗克韦尔自动化技术公司 Positioned using the power quality events of multiple instructions
US9408279B2 (en) 2014-07-21 2016-08-02 Myreka Technologies Sdn Bhd System and method for intelligent lighting systems
US9520920B2 (en) 2014-10-27 2016-12-13 Avago Technologies General Ip (Singapore) Pte. Ltd. Transmitting and receiving digital and analog signals across an isolator using amplitude modulation
US9541586B2 (en) 2014-11-24 2017-01-10 Rockwell Automation Technologies, Inc. Capture of power quality information at the time a device fails
CN104635030A (en) * 2015-02-02 2015-05-20 深圳市楚邦科技有限公司 Lightning current waveform on-line monitoring system
US10057965B2 (en) * 2015-05-04 2018-08-21 Fulham Company Limited LED driver and lighting systems technologies
US10615604B2 (en) * 2016-05-28 2020-04-07 PXiSE Energy Solutions, LLC Decoupling synchrophasor based control system for distributed energy resources
US10637673B2 (en) 2016-12-12 2020-04-28 Silicon Laboratories Inc. Energy harvesting nodes in a mesh network
CN110315764A (en) * 2018-03-29 2019-10-11 富智康精密电子(廊坊)有限公司 Mount transfer matic equipment
US10608432B2 (en) * 2018-03-30 2020-03-31 Midea Group Co., Ltd. Appliance power management system
US11039404B2 (en) 2018-07-18 2021-06-15 Dell Products L.P. Method for control and distribution of the amount of power to be lowered or raised in a multi-load system
US11237618B2 (en) 2018-07-19 2022-02-01 Dell Products L.P. System and method to maintain optimal system performance within user defined system level power cap in a changing workload environment
US11272602B2 (en) * 2018-10-23 2022-03-08 Signify Holding B.V. Lighting control method for excess electrical power accounting
US11085659B2 (en) 2019-06-10 2021-08-10 Honeywell International Inc. Monitoring for signal pulses on one or more analog inputs of a building controller
US11614473B2 (en) 2020-03-25 2023-03-28 Hubbell Incorporated System and method for monitoring power consumption of an appliance
US11056912B1 (en) 2021-01-25 2021-07-06 PXiSE Energy Solutions, LLC Power system optimization using hierarchical clusters
CN113036895A (en) * 2021-01-27 2021-06-25 余姚市立鑫电子有限公司 Power supply of central monitoring system for centralized power supply of emergency lighting
CN113096365B (en) * 2021-04-06 2022-10-21 成都圣路电器有限公司 Central control lighting system and central control light source fault alarm method

Citations (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20050097162A1 (en) * 2003-11-04 2005-05-05 Powerweb Technologies Wireless internet lighting control system

Family Cites Families (61)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4034233A (en) 1976-07-22 1977-07-05 Pacific Technology Power monitoring and regulating circuit and method having an analog input representing power rate and a digital output for controlling the on/off states of a plurality of loads
US4167679A (en) 1978-04-03 1979-09-11 Pacific Technology, Inc. Floating set point control circuit and method for use with electrical load control systems
US4345162A (en) 1980-06-30 1982-08-17 Honeywell Inc. Method and apparatus for power load shedding
US4567557A (en) 1983-02-23 1986-01-28 Burns Martin J Building intelligence system
US4965492A (en) * 1988-11-18 1990-10-23 Energy Technology, Inc. Lighting control system and module
JP2810231B2 (en) 1990-01-30 1998-10-15 ジヨンソン・サービス・カンパニー Method of locating data in distributed network system having nodes
US5416781A (en) 1992-03-17 1995-05-16 Johnson Service Company Integrated services digital network based facility management system
US5293755A (en) 1992-12-09 1994-03-15 Thomas Charles V Air conditioning load management control system
US5650936A (en) 1994-12-30 1997-07-22 Cd Power Measurement Limited Power monitor apparatus and method with object oriented structure
US6751562B1 (en) 2000-11-28 2004-06-15 Power Measurement Ltd. Communications architecture for intelligent electronic devices
US7127328B2 (en) 1994-12-30 2006-10-24 Power Measurement Ltd. System and method for federated security in an energy management system
US5572438A (en) 1995-01-05 1996-11-05 Teco Energy Management Services Engery management and building automation system
US5668446A (en) 1995-01-17 1997-09-16 Negawatt Technologies Inc. Energy management control system for fluorescent lighting
US5971597A (en) 1995-03-29 1999-10-26 Hubbell Corporation Multifunction sensor and network sensor system
US5862391A (en) 1996-04-03 1999-01-19 General Electric Company Power management control system
US6301527B1 (en) 1996-04-03 2001-10-09 General Electric Company Utilities communications architecture compliant power management control system
FR2755521B1 (en) 1996-11-07 1999-01-22 Homedia HOME AUTOMATION
US6029092A (en) 1996-11-21 2000-02-22 Intellinet, Inc. System and method for providing modular control and for managing energy consumption
US7216043B2 (en) 1997-02-12 2007-05-08 Power Measurement Ltd. Push communications architecture for intelligent electronic devices
US5861683A (en) 1997-05-30 1999-01-19 Eaton Corporation Panelboard for controlling and monitoring power or energy
US6236332B1 (en) * 1997-10-22 2001-05-22 Profile Systems, Llc Control and monitoring system
US6571140B1 (en) 1998-01-15 2003-05-27 Eutech Cybernetics Pte Ltd. Service-oriented community agent
US6728646B2 (en) 1998-02-23 2004-04-27 Enerwise Global Technologies, Inc. Energy information system and sub-measurement board for use therewith
US6119125A (en) 1998-04-03 2000-09-12 Johnson Controls Technology Company Software components for a building automation system based on a standard object superclass
US6181985B1 (en) 1998-04-29 2001-01-30 The Detroit Edison Company Rate-based load shed module
US6556875B1 (en) 1998-06-30 2003-04-29 Seiko Epson Corporation Device control system
JP3987643B2 (en) 1998-08-11 2007-10-10 東芝キヤリア株式会社 Home network system
US6233626B1 (en) 1998-10-06 2001-05-15 Schneider Automation Inc. System for a modular terminal input/output interface for communicating messaging application layer over encoded ethernet to transport layer
US6553418B1 (en) 1999-01-02 2003-04-22 Daniel J. Collins Energy information and control system
US6615088B1 (en) 1999-06-09 2003-09-02 Amx Corporation System and method of device interface configuration for a control system
US20040024483A1 (en) 1999-12-23 2004-02-05 Holcombe Bradford L. Controlling utility consumption
US6834208B2 (en) * 1999-12-30 2004-12-21 Microsoft Corporation Method and apparatus for providing distributed control of a home automation and control system
US7062361B1 (en) * 2000-05-02 2006-06-13 Mark E. Lane Method and apparatus for controlling power consumption
US6211783B1 (en) 2000-05-04 2001-04-03 Randall Wang Action control process of security alarm system
US6519509B1 (en) 2000-06-22 2003-02-11 Stonewater Software, Inc. System and method for monitoring and controlling energy distribution
AU2001278923A1 (en) * 2000-07-13 2002-01-30 Nxegen System and method for monitoring and controlling energy usage
KR20010000272A (en) 2000-09-01 2001-01-05 박인표 System for automatic control of building
US7085824B2 (en) * 2001-02-23 2006-08-01 Power Measurement Ltd. Systems for in the field configuration of intelligent electronic devices
US6795798B2 (en) * 2001-03-01 2004-09-21 Fisher-Rosemount Systems, Inc. Remote analysis of process control plant data
US20020175642A1 (en) 2001-05-23 2002-11-28 Von Kannewurff Michael C. Industrial lighting control system
US6731079B2 (en) 2001-05-23 2004-05-04 General Electric Company Industrial lighting control system and method
US7051143B2 (en) 2001-06-25 2006-05-23 Schneider Automation Inc. Method, system and program for the transmission of modbus messages between networks
US6993417B2 (en) 2001-09-10 2006-01-31 Osann Jr Robert System for energy sensing analysis and feedback
US6725104B2 (en) 2001-09-21 2004-04-20 Siemens Aktiengesellschaft Method and apparatus for E-mail based communication with automated facilities and devices
US6724157B2 (en) * 2001-11-14 2004-04-20 Astral Communications Inc. Energy savings device and method for a resistive and/or an inductive load
US6721672B2 (en) 2002-01-02 2004-04-13 American Power Conversion Method and apparatus for preventing overloads of power distribution networks
US20040002792A1 (en) 2002-06-28 2004-01-01 Encelium Technologies Inc. Lighting energy management system and method
US6819239B2 (en) 2002-08-20 2004-11-16 Victoria J. Bingham Lighting security system
US20050090915A1 (en) 2002-10-22 2005-04-28 Smart Systems Technologies, Inc. Programmable and expandable building automation and control system
HK1052832A2 (en) 2003-02-26 2003-09-05 Intexact Technologies Ltd A security system and a method of operating same
US7644290B2 (en) 2003-03-31 2010-01-05 Power Measurement Ltd. System and method for seal tamper detection for intelligent electronic devices
US6927546B2 (en) * 2003-04-28 2005-08-09 Colorado Vnet, Llc Load control system and method
US7075327B2 (en) * 2003-06-18 2006-07-11 Eaton Corporation System and method for proactive motor wellness diagnosis
DE10332925A1 (en) * 2003-07-19 2005-03-10 Airbus Gmbh A method for detecting faults in a power plant of an aircraft
US20050040943A1 (en) 2003-08-22 2005-02-24 Honeywell International, Inc. RF interconnected HVAC system and security system
US7216021B2 (en) 2003-10-30 2007-05-08 Hitachi, Ltd. Method, system and computer program for managing energy consumption
US7155305B2 (en) 2003-11-04 2006-12-26 Universal Electronics Inc. System and methods for home appliance identification and control in a networked environment
US20050125083A1 (en) 2003-11-10 2005-06-09 Kiko Frederick J. Automation apparatus and methods
US7460930B1 (en) * 2004-05-14 2008-12-02 Admmicro Properties, Llc Energy management system and method to monitor and control multiple sub-loads
US20070075854A1 (en) 2005-10-03 2007-04-05 Tyler Robert B Motion activated home security system
US11287868B1 (en) * 2020-07-15 2022-03-29 Amazon Technologies, Inc. Facility power backstopping system for power monitoring and power loss prevention

Patent Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20050097162A1 (en) * 2003-11-04 2005-05-05 Powerweb Technologies Wireless internet lighting control system
US20060025891A1 (en) * 2003-11-04 2006-02-02 Budike Lothar E Jr Wireless internet power control system

Cited By (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB2452314A (en) * 2007-08-31 2009-03-04 Cp Electronics Ltd Calculating the individual energy usage of lights controlled and monitored by a lighting controller
GB2452314B (en) * 2007-08-31 2009-11-04 Cp Electronics Ltd Lighting systems
WO2009066234A2 (en) 2007-11-21 2009-05-28 Philips Intellectual Property & Standards Gmbh Light management system with an integrated energy function
WO2009066234A3 (en) * 2007-11-21 2010-01-28 Philips Intellectual Property & Standards Gmbh Light management system with an integrated energy function
CN101869004A (en) * 2007-11-21 2010-10-20 皇家飞利浦电子股份有限公司 Light management system with integrated energy function
CN101869004B (en) * 2007-11-21 2014-10-29 皇家飞利浦电子股份有限公司 Light management system with an integrated energy function
RU2568427C2 (en) * 2007-11-21 2015-11-20 Конинклейке Филипс Электроникс Н.В. Lighting control system with integrated energy function
US10028358B2 (en) 2007-11-21 2018-07-17 Philips Lighting Holding B.V. Light management system with an integrated energy function
US9468079B2 (en) 2009-07-24 2016-10-11 Koninklijke Philips N.V. Lighting system and a method for determining the energy consumption of a lighting system
CN102541033A (en) * 2012-02-13 2012-07-04 无锡泰克塞斯新能源科技有限公司 Tracking type photovoltaic power generation system capable of preventing disastrous weathers and implementation method thereof

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US8898026B2 (en) 2014-11-25
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US7571063B2 (en) 2009-08-04
US20210400784A1 (en) 2021-12-23

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