WO2004036124A1 - Solar tracking apparatus - Google Patents

Solar tracking apparatus Download PDF

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Publication number
WO2004036124A1
WO2004036124A1 PCT/AU2003/001080 AU0301080W WO2004036124A1 WO 2004036124 A1 WO2004036124 A1 WO 2004036124A1 AU 0301080 W AU0301080 W AU 0301080W WO 2004036124 A1 WO2004036124 A1 WO 2004036124A1
Authority
WO
WIPO (PCT)
Prior art keywords
cylinder
ram
liquid
expansion chamber
tube
Prior art date
Application number
PCT/AU2003/001080
Other languages
French (fr)
Inventor
Michael Terrence Patterson
Original Assignee
Michael Terrence Patterson
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
Priority claimed from AU2002100817A external-priority patent/AU2002100817A4/en
Priority claimed from AU2003203512A external-priority patent/AU2003203512A1/en
Application filed by Michael Terrence Patterson filed Critical Michael Terrence Patterson
Priority to AU2003254387A priority Critical patent/AU2003254387B2/en
Priority to US10/531,781 priority patent/US7240674B2/en
Publication of WO2004036124A1 publication Critical patent/WO2004036124A1/en

Links

Classifications

    • GPHYSICS
    • G01MEASURING; TESTING
    • G01SRADIO DIRECTION-FINDING; RADIO NAVIGATION; DETERMINING DISTANCE OR VELOCITY BY USE OF RADIO WAVES; LOCATING OR PRESENCE-DETECTING BY USE OF THE REFLECTION OR RERADIATION OF RADIO WAVES; ANALOGOUS ARRANGEMENTS USING OTHER WAVES
    • G01S3/00Direction-finders for determining the direction from which infrasonic, sonic, ultrasonic, or electromagnetic waves, or particle emission, not having a directional significance, are being received
    • G01S3/78Direction-finders for determining the direction from which infrasonic, sonic, ultrasonic, or electromagnetic waves, or particle emission, not having a directional significance, are being received using electromagnetic waves other than radio waves
    • G01S3/782Systems for determining direction or deviation from predetermined direction
    • G01S3/785Systems for determining direction or deviation from predetermined direction using adjustment of orientation of directivity characteristics of a detector or detector system to give a desired condition of signal derived from that detector or detector system
    • G01S3/786Systems for determining direction or deviation from predetermined direction using adjustment of orientation of directivity characteristics of a detector or detector system to give a desired condition of signal derived from that detector or detector system the desired condition being maintained automatically
    • G01S3/7861Solar tracking systems
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24SSOLAR HEAT COLLECTORS; SOLAR HEAT SYSTEMS
    • F24S30/00Arrangements for moving or orienting solar heat collector modules
    • F24S30/40Arrangements for moving or orienting solar heat collector modules for rotary movement
    • F24S30/45Arrangements for moving or orienting solar heat collector modules for rotary movement with two rotation axes
    • F24S30/455Horizontal primary axis
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24SSOLAR HEAT COLLECTORS; SOLAR HEAT SYSTEMS
    • F24S50/00Arrangements for controlling solar heat collectors
    • F24S50/20Arrangements for controlling solar heat collectors for tracking
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02SGENERATION OF ELECTRIC POWER BY CONVERSION OF INFRARED RADIATION, VISIBLE LIGHT OR ULTRAVIOLET LIGHT, e.g. USING PHOTOVOLTAIC [PV] MODULES
    • H02S20/00Supporting structures for PV modules
    • H02S20/30Supporting structures being movable or adjustable, e.g. for angle adjustment
    • H02S20/32Supporting structures being movable or adjustable, e.g. for angle adjustment specially adapted for solar tracking
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24SSOLAR HEAT COLLECTORS; SOLAR HEAT SYSTEMS
    • F24S30/00Arrangements for moving or orienting solar heat collector modules
    • F24S2030/10Special components
    • F24S2030/11Driving means
    • F24S2030/115Linear actuators, e.g. pneumatic cylinders
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24SSOLAR HEAT COLLECTORS; SOLAR HEAT SYSTEMS
    • F24S25/00Arrangement of stationary mountings or supports for solar heat collector modules
    • F24S25/10Arrangement of stationary mountings or supports for solar heat collector modules extending in directions away from a supporting surface
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E10/00Energy generation through renewable energy sources
    • Y02E10/40Solar thermal energy, e.g. solar towers
    • Y02E10/47Mountings or tracking
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E10/00Energy generation through renewable energy sources
    • Y02E10/50Photovoltaic [PV] energy

Definitions

  • This invention is directed to a solar tracking apparatus which can be used in association with solar collector panels or any other device which requires tracking.
  • the invention is particularly directed to an apparatus that does not require any electric motors, sensors, or other complicated devices to enable the apparatus to track the movement of the sun.
  • solar cells are often used to convert the energy of the sun into electricity. These devices are often used in remote locations to power pumps, lights, telecommunication devices and the like and must be extremely robust and reliable. There are also other devices that require the energy of the sun these including water heating devices. The effectiveness of these devices is generally improved if the device can track the movement of the sun to enable the device to absorb as much as possible of the sun's energy. Therefore, it is well known to provide some form of solar tracking apparatus.
  • a common type of apparatus uses one or more photoelectric cells which are operatively associated with some form of electric drive motor.
  • This type of apparatus includes the fragile nature of the photoelectric cells, and the need to have a source of electric power such as battery power or electricity generated from the solar cells.
  • This type of apparatus requires a relatively high degree of servicing maintenance and repair and therefore does not find particular use in remote locations.
  • a further disadvantage with many existing solar tracking devices is that the device does not return back to the "east facing" position during the night and only does so at the beginning of the next day. This makes this type of device less efficient.
  • a further disadvantage with many existing solar tracking devices is that the devices are not particularly stable or effective under high wind conditions
  • the invention is directed to a solar tracking apparatus which is movable from a morning position to an evening position, the apparatus comprising a support means to which a solar device can be supported, a cylinder, the cylinder having a ram which is extendable from and retractable into the cylinder, an expansion chamber which forms part of or which is in fluid connection with the cylinder, a liquid in the cylinder and the expansion chamber, the liquid having a boiling point which is greater than the maximum operating temperature of the cylinder and the expansion chamber, a return means to cause the apparatus to be returned to the morning position, and a rotation means associated with the ram to rotate the apparatus from the morning position to the evening position upon extension of the ram.
  • the morning position will be the east facing position or position which faces substantially east (it being appreciated that the sun does not rise exactly in the east over a year) and the evening position will be the west facing position or position which faces substantially west.
  • the solar device may comprise solar cells or other devices which absorb solar radiation, these including water heating devices, and the like, and no particular limitation should be placed on the term “solar device”.
  • solar device can comprise a single device, a plurality of devices and the like.
  • the expansion chamber can be positioned such that liquid in the expansion chamber is initially heated mainly by the ambient air temperature to cause initial extension of the ram , and is then heated mainly by solar radiation [i.e. direct contact with the sun] to cause further extension of the ram.
  • the apparatus uses the thermal expansion of a liquid to rotate the apparatus from the east to the west and does not require the use of any electric motors, photovoltaic cells, or the need to boil a liquid (which requires parabolic reflectors or other strong heating means).
  • the apparatus moves by combination of radiant heat (direct contact with sunlight) and ambient heat (air temperature).
  • the expansion chamber is gradually heated by the surrounding air as the sun rises in the morning causing the liquid to expand.
  • the expansion causes the ram to displace which in turn causes rotation of the apparatus.
  • the apparatus is rotated steadily until it approaches in approximately horizontal position which will typically be during midday. As the sun passes the midday position, the expansion chamber is progressively exposed to direct sunlight (radiant heat) which causes further expansion of the liquid and therefore further rotation of the apparatus.
  • the apparatus preferably uses a clever combination of ambient heating and direct solar heating to enable the apparatus to track from the east to the west even as the ambient temperature decreases in the afternoon.
  • the apparatus can initially use primarily ambient heating to expand the liquid to cause the apparatus to begin tracking from the east (morning) position to the west (evening) position, and can then use direct solar heating to cause the liquid to expand even further (and therefore extend the ram even further) even when the ambient temperature begins to decrease in the afternoon.
  • this is achieved simply yet effectively by positioning the expansion chamber on the apparatus in such a manner that it can initially absorb heat from the surrounding air and later on, when the apparatus is partially rotated, the expansion chamber is exposed directly to the sun's radiation.
  • the invention resides in a solar tracking apparatus which uses volumetric expansion of a liquid only as the motive source.
  • the solar tracking apparatus can be used to support any device that requires solar energy.
  • the device will typically comprise solar cells but the invention need not be limited to this precise use and the apparatus can also be used to support and rotate other devices which may include water heating devices , air heating devices, or any other suitable device.
  • the support means can be quite varied providing that it functions to support a solar device or other device that requires solar energy. If the solar device comprises solar cells, the support means will typically comprise a support platform, support frame, support bracket, supporting rods, supporting rails, a supporting grid and the like. Other types of support means may be used depending on the solar device which is to be supported.
  • the apparatus comprises at least one cylinder which has a ram.
  • the cylinder will preferably be such that the stroke of the ram is between 50- 400 millimetres and more preferably between 50-200 millimetres.
  • the internal volume of the cylinder can vary and will typically be between 50-500 millilitres.
  • the cylinder may be larger or a plurality of cylinders may be provided.
  • the expansion chamber may comprise a hollow member which will typically comprise a tube.
  • the tube will typically be liquid tight and be in fluid communication with the cylinder.
  • the expansion chamber will typically be filled with a liquid which is selected to provide a desirable increase in volume upon increasing temperature of the liquid.
  • the expansion chamber will typically have a length of between 10-200 centimetres and a diameter of between 10-100 millimetres. This of course can vary depending upon the size of the apparatus.
  • the expansion chamber may be coupled directly to the cylinder or may be coupled indirectly to the cylinder by means of a connecting tube or other form of conduit. If a connecting tube is provided, it may be flexible.
  • the expansion chamber may comprise a number of sub-chambers which are either connected to each other or connected to the cylinder.
  • the expansion chamber may be coated or otherwise treated to improve absorption of radiant heat and/or ambient heat.
  • the expansion chamber may be coated with a black radiation absorbing paint.
  • insulation means may be provided to minimise undesirable cooling of the liquid within the expansion chamber.
  • the expansion chamber may be coated with a radiation absorbing paint on the surface of the chamber which will be in direct contact with the sun's rays, and may be insulated on parts of the chamber which will not be in direct contact with the sun's rays.
  • the expansion chamber may also form part of the cylinder and may comprise a simple extension of the cylinder.
  • the liquid which is used in the chamber and the cylinder may be selected from any liquid which has a suitable volumetric expansion coefficient. However, it may also be desirable to choose a liquid which does not cause corrosion of the internal parts of the apparatus, can assist in lubricating the apparatus and the like.
  • Various liquids can be used although it is desirable to ensure that the boiling point of the liquid is higher than the working temperature of the apparatus. Even in a harsh desert environment, it is envisaged that the working temperature of the apparatus will not exceed 60 degrees centigrade (it being appreciated that the apparatus does not require any parabolic reflectors and the like to greatly increase the temperature of the liquid) and therefore it is envisaged that a suitable liquid will be one having a boiling point of > 60 degrees centigrade.
  • a mineral oil such as an engine oil is suitable, and the oil as well as having a suitable boiling point, can also lubricate and prevent corrosion of the internal components of the apparatus.
  • Other oils and hydrocarbons may also be suitable.
  • Certain plant oils are also suitable and these can include canola oil, sunflower oil, peanut oil, grape seed oil and the like.
  • Certain liquid alcohols are suitable liquids and especially alcohols having a boiling point of > 60 degrees centigrade.
  • Ethanol is found to be a suitable alcohol as is propanol, isopropanol, and butanol.
  • High boiling point ethers, ketones, esters and the like may also be suitable liquids, it being appreciated that the liquid can be chosen based on its volumetric expansion coefficient, cost, safety (i.e. toxicity and flammability), corrosive effects on the cylinder etc.
  • the entire expansion chamber and cylinder are filled with the liquid as any gas may reduce the effectiveness of the extension and retraction of the ram.
  • the apparatus may be provided with a return means to cause the apparatus to return back to be morning position during night-time.
  • the return means may comprise a simple spring ( or a plurality of springs) which is/are sufficient to return the apparatus back to the morning position but does not unduly interfere with the operation of the ram.
  • the return means may comprise other types of biasing means such as elastic members, compressive members and the like.
  • the return means may comprise a "vacuum cylinder" which becomes progressively more under vacuum during rotation of the apparatus from the morning position to be evening position and then can return back to the rest position causing apparatus to move back from the evening position to the morning position.
  • the apparatus may be weighted such that gravity will cause the apparatus to return to the morning position.
  • the apparatus has a rotation means which is associated with the ram to rotate the apparatus from the morning position to the evening position.
  • the rotation means may comprise a simple mechanical coupling which is reliable and robust.
  • the mechanical coupling may comprise a crank arm which is attached to a pivot tube, the pivot tube being attached to the support means to rotate the support means from the morning position to the evening position and vice versa.
  • the mechanical coupling may comprise a rack and pinion arrangement where the rack is attached or forms part of the ram.
  • Various other types of rotation means are envisaged which can be used to convert the linear motion of the ram into rotating motion of the apparatus.
  • the apparatus may also be provided with an additional rotation means to enable the apparatus to rotate about substantially vertical axis.
  • the apparatus may be pre-inclined and rotated about a vertical axis.
  • This additional rotation means may also comprise a cylinder and ram which may be substantially as described above except that the ram causes pivoting or rotation of the apparatus about a vertical axis.
  • the apparatus may be mounted a support post, or any other type of supporting member.
  • FIG.1 is an isometric view showing one embodiment of a two-axis tracker for a single photovoltaic panel.
  • FIG.2 and FIG. 3 are sectional views of the device depicted in FIG. 1 showing two positions of rotation
  • FIG.4 is a sectional view of the hydraulic ram shown in FIG. 1
  • FIG. 5 is an exploded view of the device shown in FIG. 1
  • FIG. 6 is an isometric view of a preferred embodiment of a tracker and support frame for a multiple array of photovoltaic panels.
  • FIG.7 is an exploded view of the device shown in FIG.6
  • FIGS.8A and 8B are partial sectional views of the device shown in FIG.6 showing two positions of rotation.
  • FIGS.9A and 9B are side views of the device depicted in FIG. 6 (frame removed) showing north south orientation method.
  • FIG.10 shows a sectional view of an alternative thermal hydraulic cylinder, using electric power to heat the liquid.
  • FIGS.11A and 11 B Illustrate the view of Figure 9 with the addition of a thermal hydraulic cylinder illustrated in figure 4 to control north-south orientation.
  • FIGS 12A and 12B illustrate a vertical rotation modification
  • FIGS. 1- 5 shows a single panel solar tracker in a preferred embodiment.
  • FIG. 1 to FIG.5 there is shown an embodiment where support post 9 has slots cut into the upper end to accommodate rotational displacement of the axis pivot tube 12.
  • Post 9 has location holes bored through to house the north- south axis pivot bolt 7 and north south axis- positioning clamp 8. Movement of pivot tube 12 is restricted by axis bolt 7 so that it pivots in the north south direction only.
  • Right-angled axis pin 30 and spring retainer tube 31 ( see fig 5) are fixed to axis tube 12.
  • Axis tube 12 is pierced to rotatingly mount the top end of clamp pin 14. Both ends of tube 12 are threaded for shoulder bolts 11.
  • Lateral support brackets 5 and 6 are pivotally attached to tube 12 by bolts 11 and are held parallel by rod 10.
  • Clamp plates 18 fix solar panel 1 to brackets 5 and 6. Locating holes provided in the inner end of brackets 5 and 6 pivotally retain expansion tube and hydraulic cylinder assembly 2 and 3.
  • the hydraulic cylinder 3 is comprised of an outer pressure tight cylinder, a linear actuator ram 4, an adjustable gland or piston 15, a damper plate 16 and sealing "0" rings 17.
  • a ferrule fixed to the outermost end of ram 4 is rotatingly mounted on right-angled pin 30.
  • the operation of the afore described embodiment commences when the sun begins to rise above the eastern horizon and the ambient air temperature increases; the liquid contained within expansion tube 2 and cylinder 3 also begins to expand. The liquid contained therein expands at a much greater rate than the surrounding container and a pressure is created which impinges on the cross sectional area of the ram 4 thus displacing it outward proportionally to the volumetric expansion of the liquid.
  • the liquid used in the device has a volumetric expansion rate of approximately 0.085 cubic centimetres per degree Celsius increase; therefore 1 litre of liquid will expand to 1008.5 cc when raised in temperature by 10 degrees Celsius. Liquid is considered to be virtually incompressible therefore the potential pressure created by this expansion is extremely high and can be considered limited only by the strength of the container which holds it. In the afore described embodiment this pressure is used to force ram 4 outward with a limiting factor of the enclosing structure and "O" rings 17.
  • the embodiment afore described is designed to rotate a PN.
  • (photovoltaic) panel 1 of approximately one square metre and contains a volume of liquid sufficient to displace an actuator ram of 12 mm dia. (1.13square cm. cross sectional area) with a rise in temperature of 10 degrees Celsius, by 75 mm. and a pressure which is determined by the physical housing structure and sealing rings.
  • the sealing rings are conventional "O" rings, which are nominally considered to have a safe operating pressure of 1.03 MPa. This pressure can provide a rotational force of 119 kg, which is more than needed to rotate the panel.
  • the excess force provided can be used to dynamically control the positioning of the panel under high wind loads by transposing the externally applied forces to the internal structure of tube 2 and cylinder 3 and elastically deforming said structure thus maintaining an equilibrium of forces during the day. This system has been tested and proven to maintain the face of a PN. panel to within 10 degrees of perfect orientation, which is 98.5% of best possible positioning.
  • FIG. 4 shows a cross sectional view of hydraulic cylinder 3.
  • Damper plate 16 is shown as a 3-piece assembly being composed of two outer plates of rigid material sandwiching a layer of resilient material that separates chambers 21 and 22 compelling excess fluid to flow to and fro via channel 20 bored into ram 4.
  • This arrangement produces a dampening effect when the solar panel is exposed to high wind velocities. Liquid is permitted to slowly pass through a small canal maintaining a pressure balance in the chambers on either side of the damper plate. The hydraulic pressure provided by the expanding liquid is very high and combined with the damper plate the system readily handles high wind speed.
  • FIGS. 6-FIGS. 9 show another embodiment according to the invention where a plurality of solar panels 1 can be rotated simultaneously using the same basic expansion tube and hydraulic cylinder assembly as previously described.
  • expansion tube 2 is located in a gap between two rows of solar panels 1 , shown as phantom lines in FIG.6 and partly shaded by frame 40.
  • a ferrule fixed to the outermost end of ram 4 is rotatably mounted to north south axis bracket 24 by clevis 8 and pin 32.
  • Circular plate 23 fixed to post 9 has a cam shaped slot and a central hole pierced through it ( see fig 7).
  • Bracket 24 is rotatably pinned to plate 23 by axis bolt 7 and clevis 8 passes through the slot in bracket 24 and cam slot in plate 23.
  • FIG. 9 shows that when bracket 24 and attached assembly is manually rotated to compensate for seasonal conditions, clevis 8 is moved by the curved surface of the cam shaped slot in plate 23 impinging on it. Clevis 8 moves closer to the cylinder 3 and attached ram 4 is moved further into said cylinder 3. This procedure automatically compensates for the reduced volume of liquid that is caused by seasonal cooling.
  • FIG. 8 shows that the principal of operation of the embodiment shown in FIGS. 6-9 is similar to that shown in the embodiment described by FIGS.1-5.
  • FIG.11 shows a method of positioning the PV panel to increase the potential output of the said panel through the application of a hydraulic cylinder as described by FIG. 4.
  • the cylinder 36 contains a liquid that is calculated to provide an additional expansion volume so that no displacement of the ram will occur during the mid winter maximum temperature but will provide maximum expanded volume during the summer maximum daytime temperature.
  • Cylinder 36 is connected via lower support 33 and upper support 34 to post 9 and is pivotally connected at 35 to support 34.
  • FIG. 10 shows an alternative method of heating and expanding the liquid contained in hydraulic cylinder 3 where an electric current is provided by battery 26 through a circuit containing a rheostat 28, a cam operated micro switch 27 and heating element 25.
  • the power required to rotate the PV panels is very low and for the operation of a one square metre panel, is less than one watt when cylinder 3 is encased with adequate thermal insulation material 37.
  • Figures 12a and 12b illustrates an embodiment to enable the apparatus to rotate about a vertical axis defined by post 9. This is achieved using a "rack and pinion" mechanism.
  • cylinder 3 contains a modified ram 4.
  • Ram 4 is modified by having a rack 40 at the end of the ram 4 (particularly illustrated in figures 12b).
  • the upper part of post 9 is provided with a pinion gear 41.
  • Extension and retraction of ram 4 will cause rotation of the entire apparatus about post 9.
  • a flexible hose 46 connects the expansion tube 2 to cylinder 3, cylinder 3 and ram 2 being provided with attachments nipples 38.
  • Thrust washes 42, 43 are provided on the either side of pinion 41.
  • Ram 4 can cause rotation of up to 270°.
  • a windshield may be used to prevent excessive air convection currents from reducing the temperature of the liquid in the expansion tube or cylinder.
  • the windshield may comprise a clear member which will still allow the expansion tube to absorb radiant heat.
  • the windshield may be positioned in such a way to not hinder radiant or ambient heating but to still provide a shield against cooling winds.
  • the apparatus may be attached to a number of other supports which can also supports solar cells and where the other supports are all controlled by the cylinder on the apparatus using connecting means which may comprise rods, cables and the like.
  • connecting means which may comprise rods, cables and the like.
  • the apparatus may include a small electric heater to heat the liquid if desired (see figure 10).
  • the electricity for the small electric heater can be supplied by some of the solar cells.
  • the apparatus has many advantages.
  • One advantage is that the liquid remains in a liquid state throughout the full operational parameters of the apparatus and the liquid is not artificially heated (for instance by parabolic mirrors) and is heated only by solar radiation or ambient air temperature.

Abstract

A solar tracking apparatus (1) which is movable from a morning position to an evening position, the apparatus comprising a support means (9) to which a solar device can be supported, a cylinder (3) , the cylinder (3) including a ram (4) which is extendable from and retractable into the cylinder (3), an expansion chamber (2) which forms part of or which is in fluid connection with the cylinder (3), a liquid in the cylinder (3) and the expansion chamber (2), the liquid having a boiling point which is greater than the maximum operating temperature of the cylinder (3) and the expansion chamber (2) a return means (13) to cause the apparatus to be returned to the morning position, and rotation means associated with the ram (4) to rotate the apparatus from the morning position to the evening position upon extension of the ram (4).

Description

SOLAR TRACKING APPARATUS
FIELD OF THE INVENTION
This invention is directed to a solar tracking apparatus which can be used in association with solar collector panels or any other device which requires tracking. The invention is particularly directed to an apparatus that does not require any electric motors, sensors, or other complicated devices to enable the apparatus to track the movement of the sun.
BACKGROUND ART
There are many devices that use the energy of the sun to provide a useful benefit. As an example, solar cells are often used to convert the energy of the sun into electricity. These devices are often used in remote locations to power pumps, lights, telecommunication devices and the like and must be extremely robust and reliable. There are also other devices that require the energy of the sun these including water heating devices. The effectiveness of these devices is generally improved if the device can track the movement of the sun to enable the device to absorb as much as possible of the sun's energy. Therefore, it is well known to provide some form of solar tracking apparatus.
A common type of apparatus uses one or more photoelectric cells which are operatively associated with some form of electric drive motor. There are several disadvantages with this type of apparatus these including the fragile nature of the photoelectric cells, and the need to have a source of electric power such as battery power or electricity generated from the solar cells. This type of apparatus requires a relatively high degree of servicing maintenance and repair and therefore does not find particular use in remote locations.
An attempt has been made to do away with the need for electric motors and photoelectric cells. For instance, international patent application WO 92/11496 describes an apparatus which has two cylinders. Each cylinder is filled with a low boiling liquid (which can include ether). Around each cylinder is a parabolic reflector. One cylinder and its parabolic reflector faces the east and the other cylinder and its parabolic reflector faces the west. As the sun rises in the east, the sun's rays will be concentrated by the parabolic reflector onto the east facing cylinder to boil the liquid in the cylinder to create a gas which causes the cylinder ram to extend and this causes rotation of a framework on which solar cells are attached. An advantage with this apparatus is that photoelectric cells and electric motors are not required. However one main disadvantage is that the parabolic reflectors are relatively high maintenance and the reflector (or the transparent glass or plastic cover) must be kept very clean. Also, significant heat is required to boil the liquid into the gas which means that the apparatus may not work immediately.
Moreover, working with gas requires particular design principles and the overall effect is that this type of apparatus is not entirely reliable and robust.
A further disadvantage with many existing solar tracking devices is that the device does not return back to the "east facing" position during the night and only does so at the beginning of the next day. This makes this type of device less efficient. A further disadvantage with many existing solar tracking devices is that the devices are not particularly stable or effective under high wind conditions
Therefore, there would be an advantage if it were possible to develop a solar tracking apparatus that did not require photoelectric cells that did not require an electric motor to track the apparatus, that did not require parabolic reflectors, and that did not require boiling a liquid into a gas to provide the working force for a cylinder.
It will be clearly understood that, if a prior art publication is referred to herein, this reference does not constitute an admission that the publication forms part of the common general knowledge in the art in Australia or in any other country.
OBJECT OF THE INVENTION It is an object of the invention to provide a solar tracking apparatus which may overcome at least some of the above-mentioned disadvantages or provide a useful or commercial choice.
In one form, the invention is directed to a solar tracking apparatus which is movable from a morning position to an evening position, the apparatus comprising a support means to which a solar device can be supported, a cylinder, the cylinder having a ram which is extendable from and retractable into the cylinder, an expansion chamber which forms part of or which is in fluid connection with the cylinder, a liquid in the cylinder and the expansion chamber, the liquid having a boiling point which is greater than the maximum operating temperature of the cylinder and the expansion chamber, a return means to cause the apparatus to be returned to the morning position, and a rotation means associated with the ram to rotate the apparatus from the morning position to the evening position upon extension of the ram.
Typically, the morning position will be the east facing position or position which faces substantially east (it being appreciated that the sun does not rise exactly in the east over a year) and the evening position will be the west facing position or position which faces substantially west.
The solar device may comprise solar cells or other devices which absorb solar radiation, these including water heating devices, and the like, and no particular limitation should be placed on the term "solar device". The term "solar device" can comprise a single device, a plurality of devices and the like.
The expansion chamber can be positioned such that liquid in the expansion chamber is initially heated mainly by the ambient air temperature to cause initial extension of the ram , and is then heated mainly by solar radiation [i.e. direct contact with the sun] to cause further extension of the ram.
Thus, the apparatus uses the thermal expansion of a liquid to rotate the apparatus from the east to the west and does not require the use of any electric motors, photovoltaic cells, or the need to boil a liquid (which requires parabolic reflectors or other strong heating means). In an embodiment, the apparatus moves by combination of radiant heat (direct contact with sunlight) and ambient heat (air temperature). The expansion chamber is gradually heated by the surrounding air as the sun rises in the morning causing the liquid to expand. The expansion causes the ram to displace which in turn causes rotation of the apparatus. The apparatus is rotated steadily until it approaches in approximately horizontal position which will typically be during midday. As the sun passes the midday position, the expansion chamber is progressively exposed to direct sunlight (radiant heat) which causes further expansion of the liquid and therefore further rotation of the apparatus. During night-time the liquid cools and contracts permitting the return means to rotate the apparatus back to the easterly position. The apparatus preferably uses a clever combination of ambient heating and direct solar heating to enable the apparatus to track from the east to the west even as the ambient temperature decreases in the afternoon. Thus, the apparatus can initially use primarily ambient heating to expand the liquid to cause the apparatus to begin tracking from the east (morning) position to the west (evening) position, and can then use direct solar heating to cause the liquid to expand even further (and therefore extend the ram even further) even when the ambient temperature begins to decrease in the afternoon.
In one form, this is achieved simply yet effectively by positioning the expansion chamber on the apparatus in such a manner that it can initially absorb heat from the surrounding air and later on, when the apparatus is partially rotated, the expansion chamber is exposed directly to the sun's radiation.
In a broader form, the invention resides in a solar tracking apparatus which uses volumetric expansion of a liquid only as the motive source.
The solar tracking apparatus can be used to support any device that requires solar energy. The device will typically comprise solar cells but the invention need not be limited to this precise use and the apparatus can also be used to support and rotate other devices which may include water heating devices , air heating devices, or any other suitable device.
The support means can be quite varied providing that it functions to support a solar device or other device that requires solar energy. If the solar device comprises solar cells, the support means will typically comprise a support platform, support frame, support bracket, supporting rods, supporting rails, a supporting grid and the like. Other types of support means may be used depending on the solar device which is to be supported.
The apparatus comprises at least one cylinder which has a ram. The cylinder will preferably be such that the stroke of the ram is between 50- 400 millimetres and more preferably between 50-200 millimetres. The internal volume of the cylinder can vary and will typically be between 50-500 millilitres. For larger systems, the cylinder may be larger or a plurality of cylinders may be provided.
The expansion chamber may comprise a hollow member which will typically comprise a tube. The tube will typically be liquid tight and be in fluid communication with the cylinder. The expansion chamber will typically be filled with a liquid which is selected to provide a desirable increase in volume upon increasing temperature of the liquid. The expansion chamber will typically have a length of between 10-200 centimetres and a diameter of between 10-100 millimetres. This of course can vary depending upon the size of the apparatus. The expansion chamber may be coupled directly to the cylinder or may be coupled indirectly to the cylinder by means of a connecting tube or other form of conduit. If a connecting tube is provided, it may be flexible. The expansion chamber may comprise a number of sub-chambers which are either connected to each other or connected to the cylinder. The expansion chamber may be coated or otherwise treated to improve absorption of radiant heat and/or ambient heat. For instance, the expansion chamber may be coated with a black radiation absorbing paint. If desired, insulation means may be provided to minimise undesirable cooling of the liquid within the expansion chamber. Thus, it is envisaged that the expansion chamber may be coated with a radiation absorbing paint on the surface of the chamber which will be in direct contact with the sun's rays, and may be insulated on parts of the chamber which will not be in direct contact with the sun's rays. The expansion chamber may also form part of the cylinder and may comprise a simple extension of the cylinder.
The liquid which is used in the chamber and the cylinder may be selected from any liquid which has a suitable volumetric expansion coefficient. However, it may also be desirable to choose a liquid which does not cause corrosion of the internal parts of the apparatus, can assist in lubricating the apparatus and the like. Various liquids can be used although it is desirable to ensure that the boiling point of the liquid is higher than the working temperature of the apparatus. Even in a harsh desert environment, it is envisaged that the working temperature of the apparatus will not exceed 60 degrees centigrade (it being appreciated that the apparatus does not require any parabolic reflectors and the like to greatly increase the temperature of the liquid) and therefore it is envisaged that a suitable liquid will be one having a boiling point of > 60 degrees centigrade. It is found that a mineral oil such as an engine oil is suitable, and the oil as well as having a suitable boiling point, can also lubricate and prevent corrosion of the internal components of the apparatus. Other oils and hydrocarbons may also be suitable. Certain plant oils are also suitable and these can include canola oil, sunflower oil, peanut oil, grape seed oil and the like. Certain liquid alcohols are suitable liquids and especially alcohols having a boiling point of > 60 degrees centigrade. Ethanol is found to be a suitable alcohol as is propanol, isopropanol, and butanol. High boiling point ethers, ketones, esters and the like may also be suitable liquids, it being appreciated that the liquid can be chosen based on its volumetric expansion coefficient, cost, safety (i.e. toxicity and flammability), corrosive effects on the cylinder etc.
It is preferred that the entire expansion chamber and cylinder are filled with the liquid as any gas may reduce the effectiveness of the extension and retraction of the ram.
The apparatus may be provided with a return means to cause the apparatus to return back to be morning position during night-time. The return means may comprise a simple spring ( or a plurality of springs) which is/are sufficient to return the apparatus back to the morning position but does not unduly interfere with the operation of the ram. However, the return means may comprise other types of biasing means such as elastic members, compressive members and the like. It is also envisaged that the return means may comprise a "vacuum cylinder" which becomes progressively more under vacuum during rotation of the apparatus from the morning position to be evening position and then can return back to the rest position causing apparatus to move back from the evening position to the morning position. It is also envisaged that the apparatus may be weighted such that gravity will cause the apparatus to return to the morning position. The apparatus has a rotation means which is associated with the ram to rotate the apparatus from the morning position to the evening position. The rotation means may comprise a simple mechanical coupling which is reliable and robust. The mechanical coupling may comprise a crank arm which is attached to a pivot tube, the pivot tube being attached to the support means to rotate the support means from the morning position to the evening position and vice versa. Alternatively, the mechanical coupling may comprise a rack and pinion arrangement where the rack is attached or forms part of the ram. Various other types of rotation means are envisaged which can be used to convert the linear motion of the ram into rotating motion of the apparatus.
The apparatus may also be provided with an additional rotation means to enable the apparatus to rotate about substantially vertical axis. In this version, the apparatus may be pre-inclined and rotated about a vertical axis. This additional rotation means may also comprise a cylinder and ram which may be substantially as described above except that the ram causes pivoting or rotation of the apparatus about a vertical axis.
The apparatus may be mounted a support post, or any other type of supporting member. BRIEF DESCRIPTION OF THE DRAWINGS
Embodiments of the invention will be described with reference to the following drawings in which:
FIG.1 is an isometric view showing one embodiment of a two-axis tracker for a single photovoltaic panel. FIG.2 and FIG. 3 are sectional views of the device depicted in FIG. 1 showing two positions of rotation
FIG.4 is a sectional view of the hydraulic ram shown in FIG. 1
FIG. 5 is an exploded view of the device shown in FIG. 1
FIG. 6 is an isometric view of a preferred embodiment of a tracker and support frame for a multiple array of photovoltaic panels.
FIG.7 is an exploded view of the device shown in FIG.6
FIGS.8A and 8B are partial sectional views of the device shown in FIG.6 showing two positions of rotation. FIGS.9A and 9B are side views of the device depicted in FIG. 6 (frame removed) showing north south orientation method.
FIG.10 shows a sectional view of an alternative thermal hydraulic cylinder, using electric power to heat the liquid. FIGS.11A and 11 B Illustrate the view of Figure 9 with the addition of a thermal hydraulic cylinder illustrated in figure 4 to control north-south orientation.
FIGS 12A and 12B illustrate a vertical rotation modification.
BEST MODE FIGS. 1- 5 shows a single panel solar tracker in a preferred embodiment.
In FIG. 1 to FIG.5, there is shown an embodiment where support post 9 has slots cut into the upper end to accommodate rotational displacement of the axis pivot tube 12. Post 9 has location holes bored through to house the north- south axis pivot bolt 7 and north south axis- positioning clamp 8. Movement of pivot tube 12 is restricted by axis bolt 7 so that it pivots in the north south direction only. Right-angled axis pin 30 and spring retainer tube 31 ( see fig 5) are fixed to axis tube 12. Axis tube 12 is pierced to rotatingly mount the top end of clamp pin 14. Both ends of tube 12 are threaded for shoulder bolts 11. Lateral support brackets 5 and 6 are pivotally attached to tube 12 by bolts 11 and are held parallel by rod 10. Clamp plates 18 fix solar panel 1 to brackets 5 and 6. Locating holes provided in the inner end of brackets 5 and 6 pivotally retain expansion tube and hydraulic cylinder assembly 2 and 3. The hydraulic cylinder 3 is comprised of an outer pressure tight cylinder, a linear actuator ram 4, an adjustable gland or piston 15, a damper plate 16 and sealing "0" rings 17. A ferrule fixed to the outermost end of ram 4 is rotatingly mounted on right-angled pin 30.
The operation of the afore described embodiment commences when the sun begins to rise above the eastern horizon and the ambient air temperature increases; the liquid contained within expansion tube 2 and cylinder 3 also begins to expand. The liquid contained therein expands at a much greater rate than the surrounding container and a pressure is created which impinges on the cross sectional area of the ram 4 thus displacing it outward proportionally to the volumetric expansion of the liquid.
The liquid used in the device has a volumetric expansion rate of approximately 0.085 cubic centimetres per degree Celsius increase; therefore 1 litre of liquid will expand to 1008.5 cc when raised in temperature by 10 degrees Celsius. Liquid is considered to be virtually incompressible therefore the potential pressure created by this expansion is extremely high and can be considered limited only by the strength of the container which holds it. In the afore described embodiment this pressure is used to force ram 4 outward with a limiting factor of the enclosing structure and "O" rings 17. The embodiment afore described is designed to rotate a PN.
(photovoltaic) panel 1 of approximately one square metre and contains a volume of liquid sufficient to displace an actuator ram of 12 mm dia. (1.13square cm. cross sectional area) with a rise in temperature of 10 degrees Celsius, by 75 mm. and a pressure which is determined by the physical housing structure and sealing rings.
The sealing rings are conventional "O" rings, which are nominally considered to have a safe operating pressure of 1.03 MPa. This pressure can provide a rotational force of 119 kg, which is more than needed to rotate the panel. The excess force provided can be used to dynamically control the positioning of the panel under high wind loads by transposing the externally applied forces to the internal structure of tube 2 and cylinder 3 and elastically deforming said structure thus maintaining an equilibrium of forces during the day. This system has been tested and proven to maintain the face of a PN. panel to within 10 degrees of perfect orientation, which is 98.5% of best possible positioning.
Different locations require different volumes of liquid and / or a liquid that has a higher or lower expansion rate than the embodiment afore described; this is easily compensated for by adjustment of the threaded gland 15 and / or using an expansion liquid that has characteristics better suited to the climatic conditions of the installation site.
Ambient temperatures usually increase at a steady rate during a normal climatic day and reach a maximum at about an hour after midday. When the increase in air temperature has rotated the PN. panel to the horizontal position the expansion tube 2 is progressively exposed to solar radiation where the liquid contained therein continues to expand pushing the panel gradually toward the west. The liquid contained in tube 2 and cylinder 3 cools overnight permitting spring 13 to return solar panel 1 to the eastern most position. The liquid is selected for its optimum thermal expansion properties and the volume contained within the cylinder and the expansion tube is calculated to provide sufficient excess volume when heated to displace the ram outward from the cylinder and to rotate the panel assembly through approximately 70° by convection heating only. FIG. 4 shows a cross sectional view of hydraulic cylinder 3.
Damper plate 16 is shown as a 3-piece assembly being composed of two outer plates of rigid material sandwiching a layer of resilient material that separates chambers 21 and 22 compelling excess fluid to flow to and fro via channel 20 bored into ram 4. This arrangement produces a dampening effect when the solar panel is exposed to high wind velocities. Liquid is permitted to slowly pass through a small canal maintaining a pressure balance in the chambers on either side of the damper plate. The hydraulic pressure provided by the expanding liquid is very high and combined with the damper plate the system readily handles high wind speed. FIGS. 6-FIGS. 9 show another embodiment according to the invention where a plurality of solar panels 1 can be rotated simultaneously using the same basic expansion tube and hydraulic cylinder assembly as previously described. In this embodiment expansion tube 2 is located in a gap between two rows of solar panels 1 , shown as phantom lines in FIG.6 and partly shaded by frame 40. A ferrule fixed to the outermost end of ram 4 is rotatably mounted to north south axis bracket 24 by clevis 8 and pin 32. Circular plate 23 fixed to post 9 has a cam shaped slot and a central hole pierced through it ( see fig 7). Bracket 24 is rotatably pinned to plate 23 by axis bolt 7 and clevis 8 passes through the slot in bracket 24 and cam slot in plate 23.
FIG. 9 shows that when bracket 24 and attached assembly is manually rotated to compensate for seasonal conditions, clevis 8 is moved by the curved surface of the cam shaped slot in plate 23 impinging on it. Clevis 8 moves closer to the cylinder 3 and attached ram 4 is moved further into said cylinder 3. This procedure automatically compensates for the reduced volume of liquid that is caused by seasonal cooling.
FIG. 8 shows that the principal of operation of the embodiment shown in FIGS. 6-9 is similar to that shown in the embodiment described by FIGS.1-5.
FIG.11 shows a method of positioning the PV panel to increase the potential output of the said panel through the application of a hydraulic cylinder as described by FIG. 4. The cylinder 36 contains a liquid that is calculated to provide an additional expansion volume so that no displacement of the ram will occur during the mid winter maximum temperature but will provide maximum expanded volume during the summer maximum daytime temperature. Cylinder 36 is connected via lower support 33 and upper support 34 to post 9 and is pivotally connected at 35 to support 34. FIG. 10 shows an alternative method of heating and expanding the liquid contained in hydraulic cylinder 3 where an electric current is provided by battery 26 through a circuit containing a rheostat 28, a cam operated micro switch 27 and heating element 25. The power required to rotate the PV panels is very low and for the operation of a one square metre panel, is less than one watt when cylinder 3 is encased with adequate thermal insulation material 37.
Figures 12a and 12b illustrates an embodiment to enable the apparatus to rotate about a vertical axis defined by post 9. This is achieved using a "rack and pinion" mechanism. Specifically, cylinder 3 contains a modified ram 4. Ram 4 is modified by having a rack 40 at the end of the ram 4 (particularly illustrated in figures 12b). The upper part of post 9 is provided with a pinion gear 41. Extension and retraction of ram 4 will cause rotation of the entire apparatus about post 9. A flexible hose 46 connects the expansion tube 2 to cylinder 3, cylinder 3 and ram 2 being provided with attachments nipples 38. Thrust washes 42, 43 are provided on the either side of pinion 41. Ram 4 can cause rotation of up to 270°. The apparatus illustrated in figures 12a and b is for the Southern Hemisphere and would have components fabricated in mirror reverse for the Northern Hemisphere. It is envisaged that a windshield may be used to prevent excessive air convection currents from reducing the temperature of the liquid in the expansion tube or cylinder. The windshield may comprise a clear member which will still allow the expansion tube to absorb radiant heat. Alternatively, the windshield may be positioned in such a way to not hinder radiant or ambient heating but to still provide a shield against cooling winds.
It is further envisaged that the apparatus may be attached to a number of other supports which can also supports solar cells and where the other supports are all controlled by the cylinder on the apparatus using connecting means which may comprise rods, cables and the like. In this manner, the cylinder on the apparatus can be used to rotate a number of separate devices and the other devices can be quite simple constructions without a cylinder.
Although an advantage of the invention is that it does not require motors, batteries and the like, it is envisaged that the apparatus may include a small electric heater to heat the liquid if desired (see figure 10). The electricity for the small electric heater can be supplied by some of the solar cells.
The apparatus has many advantages. One advantage is that the liquid remains in a liquid state throughout the full operational parameters of the apparatus and the liquid is not artificially heated (for instance by parabolic mirrors) and is heated only by solar radiation or ambient air temperature.
Throughout the specification and the claims (if present), unless the context requires otherwise, the term "comprise", or variations such as
"comprises" or "comprising", will be understood to apply the inclusion of the stated integer or group of integers but not the exclusion of any other integer or group of integers.
It should be appreciated that various other changes and modifications can be made to any embodiment described without departing from the spirit and scope of the invention.

Claims

CLAIMS:
1. A solar tracking apparatus which is movable from a morning position to an evening position, the apparatus comprising a support means to which a solar device can be supported, a cylinder, the cylinder including a ram which is extendable from and retractable into the cylinder, an expansion chamber which forms part of or which is in fluid connection with the cylinder, a liquid in the cylinder and the expansion chamber, the liquid having a boiling point which is greater than the maximum operating temperature of the cylinder and the expansion chamber, a return means to cause the apparatus to be returned to the morning position, and rotation means associated with the ram to rotate the apparatus from the morning position to the evening position upon extension of the ram.
2. The apparatus of claim 1 , wherein the support means comprises a supporting frame.
3. The apparatus of claim 2, wherein the solar device comprise photovoltaic cells.
4. The apparatus of claim 1 , wherein the expansion chamber comprises a hollow tube which is separate to the cylinder and attached thereto.
5. The apparatus of claim 1 , wherein the liquid is selected from the group consisting of a mineral oil, a plant oil, and an alcohol with the proviso that the boiling point of the liquid is higher than the maximum operating temperature of the apparatus.
6. The apparatus as claimed in claim 1 , wherein the return means is a spring.
7. The apparatus of claim 1 , wherein the rotation means is a mechanical crank assembly.
8. The assembly of claim 7, wherein the mechanical crank assembly comprises a pivot tube, the pivot tube convertible about a substantially horizontal axis, an L shaped lever arm attached to the pivot tube, attachment means of the ram to attach the ram to the lever arm such that extension and retraction of the ram will cause rotation of the pivot tube, the pivot tube being attached to the support means to rotate the support means upon rotation of the pivot tube.
9. The assembly of claim 8, comprising a vertical support post, the perfect tube being pivotly supported by the support post .
PCT/AU2003/001080 2002-10-17 2003-08-25 Solar tracking apparatus WO2004036124A1 (en)

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Cited By (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1632786A1 (en) * 2004-09-03 2006-03-08 Manuel Lahuerta Romeo Solar Tracker
ES2281990A1 (en) * 2006-03-16 2007-10-01 Ingenieria, Energia Y Medio Ambiente. Ingema S.L. Two-axis solar tracker
ES2283233A1 (en) * 2007-03-29 2007-10-16 Jose Antonio Rodriguez Hoyo Frame structure for solar panels allowing sun following
WO2008000876A1 (en) 2006-06-28 2008-01-03 Sistema Hidraulico Solar, Sl Support structure for solar trackers
ES2317774A1 (en) * 2006-03-08 2009-04-16 Krinner Innovation Gmbh Sun position tracking device for e.g. photovoltaic module, has driving motor for pivoting solar module around axis and elevation axis, where axes are driven, such that elevation axis is guided with respect to its inclination
EP2336673A3 (en) * 2009-12-08 2012-05-02 Suntop Solar Energy Co., Ltd. Sun-tracking solar energy collector apparatus
CN108150378A (en) * 2015-12-01 2018-06-12 邵作权 Solar energy assists fluid feed system

Families Citing this family (70)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2007087343A2 (en) * 2006-01-25 2007-08-02 Intematix Corporation Solar modules with tracking and concentrating features
US20070275770A1 (en) * 2006-05-25 2007-11-29 Sony Ericsson Mobile Communications Ab Hands-free accessory for mobile telephone
US20080087274A1 (en) * 2006-06-05 2008-04-17 Datong Chen Synchronized solar concentrator array
WO2008137610A1 (en) * 2007-05-01 2008-11-13 Sunovia Energy Technologies, Inc. System and method for collecting and optically transmitting solar radiation
US8459249B2 (en) * 2007-06-15 2013-06-11 Ronald P. Corio Single axis solar tracking system
US7381886B1 (en) * 2007-07-30 2008-06-03 Emcore Corporation Terrestrial solar array
US20090056699A1 (en) * 2007-08-27 2009-03-05 Mills David R Linear fresnel solar arrays and receievers therefor
US9022020B2 (en) 2007-08-27 2015-05-05 Areva Solar, Inc. Linear Fresnel solar arrays and drives therefor
ES2326204B1 (en) * 2007-10-24 2010-05-26 Talleres Clavijo S.L. IMPROVEMENTS IN THE ORIENTABLE SOLAR PANEL SYSTEMS.
US8513514B2 (en) 2008-10-24 2013-08-20 Suncore Photovoltaics, Inc. Solar tracking for terrestrial solar arrays with variable start and stop positions
US8274028B2 (en) * 2008-02-27 2012-09-25 Sunedison, Llc Counterweighted active tracking solar panel rack
US20090293861A1 (en) * 2008-06-02 2009-12-03 Pvxworks, Llc Solar tracker system and method of making
US20100263659A9 (en) * 2008-06-02 2010-10-21 Pv Trackers, Llc Solar tracker system and method of making
WO2009149450A1 (en) 2008-06-07 2009-12-10 James Hoffman Solar energy collection system
GR1007324B (en) * 2008-08-06 2011-06-27 Γρηγοριος Βασιλειου Κωταϊδης Two-shaft rotary hydraulically-moving base for the placing of photovotaic collectors
TWM354652U (en) 2008-10-02 2009-04-11 Everphoton Energy Corp Electric generator installed on transportation vehicle
US8507837B2 (en) 2008-10-24 2013-08-13 Suncore Photovoltaics, Inc. Techniques for monitoring solar array performance and applications thereof
US20100139645A1 (en) * 2008-12-01 2010-06-10 Sun-A-Ray, Llc. Balanced support and solar tracking system for panels of photovoltaic cells
MX2011005952A (en) 2008-12-03 2011-11-02 James Hoffman Solar energy collection system.
US8188414B2 (en) 2008-12-23 2012-05-29 Opel, Inc. Grid support system for a tracker-mounted solar panel array for rooftop applications
KR101056367B1 (en) * 2009-01-28 2011-08-12 중앙대학교 산학협력단 Solar condenser
US9241600B2 (en) * 2009-04-01 2016-01-26 Gojo Industries, Inc. Adjustable solar-power unit for a dispenser
ITPD20090112A1 (en) * 2009-04-27 2010-10-28 Antonio Zanardo PASSIVE SOLAR TRACKER
IL205984A (en) * 2009-05-26 2013-11-28 Young & Franklin Inc Actuator-based system for controlling rotational position of solar collector trough
US20110000478A1 (en) * 2009-07-02 2011-01-06 Dan Reznik Camera-based heliostat tracking controller
US8707949B2 (en) * 2009-08-29 2014-04-29 James Theodore Hoffman Tracking solar panel mount
US20110100354A1 (en) * 2009-10-29 2011-05-05 Cn-J Technology Co., Ltd. Non-electrically-powered sun-tracking solar system
US9347692B2 (en) * 2009-11-24 2016-05-24 Guy A. Pizzarello Low profile solar tracking systems and methods
FR2954972B1 (en) * 2010-01-04 2012-10-12 Commissariat Energie Atomique METHOD OF AUTOMATICALLY ORIENTING A SOLAR PANEL DEVICE AND DEVICE OPERATING ACCORDING TO SAID METHOD
WO2012027666A2 (en) * 2010-08-26 2012-03-01 Phoenix Renewables, Llc Covered parking structure adjustable solar energy collector holder and parking lot thereof
US20120067336A1 (en) * 2010-09-22 2012-03-22 Atomic Energy Council-Institute Of Nuclear Energy Research Device for Supporting a Sun-Tracking Unit of a Photovoltaic Module
US8407950B2 (en) 2011-01-21 2013-04-02 First Solar, Inc. Photovoltaic module support system
WO2012121712A1 (en) * 2011-03-08 2012-09-13 Abengoa Solar Inc. Trough solar collector module
US9746207B1 (en) * 2011-03-16 2017-08-29 Solarreserve Technology, Llc Tracking modules including tip/tilt adjustability and construction features
US20130061845A1 (en) * 2011-09-12 2013-03-14 Zomeworks Corporation Radiant energy driven orientation system
US8763601B2 (en) 2011-12-29 2014-07-01 Sulas Industries, Inc. Solar tracker for solar energy devices
US10720541B2 (en) 2012-06-26 2020-07-21 Lockheed Martin Corporation Foldable solar tracking system, assembly and method for assembly, shipping and installation of the same
US9496822B2 (en) 2012-09-24 2016-11-15 Lockheed Martin Corporation Hurricane proof solar tracker
US10605365B1 (en) 2012-10-26 2020-03-31 Other Lab, Llc Fluidic actuator
US9766319B2 (en) 2012-12-10 2017-09-19 Nextracker Inc. Off-set drive assembly for solar tracker
DE112013005890T5 (en) 2012-12-10 2015-09-10 Nextracker Inc. Horizontal balanced solar flatfighter
US10008975B2 (en) 2012-12-10 2018-06-26 Nextracker Inc. Clamp assembly for solar tracker
US9466749B1 (en) 2012-12-10 2016-10-11 Nextracker Inc. Balanced solar tracker clamp
US9548697B2 (en) * 2013-02-28 2017-01-17 Wisconsin Alumni Research Foundation Passive solar tracking system to enhance solar cell output
USD733645S1 (en) 2013-06-28 2015-07-07 Dow Global Technologies Llc Corner connector for a photovoltaic module frame
USD747262S1 (en) 2013-06-28 2016-01-12 Dow Global Technologies Llc Photovoltaic back panel
US9182030B2 (en) * 2013-09-26 2015-11-10 Brent Morgan Slew drive gearbox with spherical adjusting mount
KR101796599B1 (en) 2014-02-19 2017-12-01 어레이 테크놀로지 인코퍼레이티드 Torsion Limiter Devices, Systems and Methods and Solar Trackers Incorporating Torsion Limiters
JP6242249B2 (en) * 2014-03-10 2017-12-06 東光電機工業株式会社 Solar tracking device and solar light utilization system
NL1040816B1 (en) * 2014-05-23 2016-03-15 Vincentius Carolus Maria Peters Ir Object tracking device.
JP6324883B2 (en) * 2014-11-21 2018-05-16 株式会社豊田中央研究所 Solar tracking device
US9450535B2 (en) * 2014-12-31 2016-09-20 Echostar Technologies L.L.C. Solar powered satellite system
US9705587B2 (en) 2014-12-31 2017-07-11 Echostar Technologies L.L.C. Solar powered satellite system
US10651782B2 (en) * 2016-06-30 2020-05-12 Solarcity Corporation Ballasted tracker drive assembly
EP3589899B1 (en) 2017-03-02 2022-12-28 Array Technologies, Inc. Spring counter-balance assemblies and solar trackers incorporating spring counter-balance assemblies
EP3396272A1 (en) * 2017-04-25 2018-10-31 Vestel Elektronik Sanayi ve Ticaret A.S. Solar energy devices
US20180328625A1 (en) * 2017-05-15 2018-11-15 Olivia Schenck Systems and methods for solar tracking
US11855581B2 (en) * 2017-07-18 2023-12-26 Polar Racking Inc. Solar panel support and drive system
CN107351988B (en) * 2017-08-18 2023-05-30 绿华能源(福建)有限公司 Floating type solar energy absorption platform
DE102018121694A1 (en) * 2017-09-07 2019-03-07 Stabilus Gmbh Systems and methods for attenuating photovoltaic module assemblies
USD850363S1 (en) * 2018-03-05 2019-06-04 Sunpower Corporation Solar panel support
US11416010B2 (en) 2018-02-13 2022-08-16 FCX Solar LLC System and method for flexible solar tracker and testing
AU2019222676B2 (en) 2018-02-13 2020-09-10 FCX Solar LLC Solar tracker system
USD891361S1 (en) * 2018-10-25 2020-07-28 Sys3E Technologies Private Limited Solar panel assembly
USD905626S1 (en) 2019-07-25 2020-12-22 Nextracker Inc. Panel rail saddle for solar module
WO2021262752A1 (en) 2020-06-22 2021-12-30 Sunfolding, Inc. Locking, dampening and actuation systems and methods for solar trackers
US11558008B2 (en) * 2020-12-14 2023-01-17 Nevados Engineering, Inc. Row-end cantilevered beam module support
GB2616570A (en) * 2020-12-18 2023-09-13 Preformed Line Products Co Mounting system for mounting a photovoltaic panel
US11209337B1 (en) 2021-07-01 2021-12-28 FCX Solar LLC System and method for flexible solar tracker and testing
US20230139980A1 (en) * 2021-11-02 2023-05-04 Sunfolding, Inc. Inflatable bladder system and method

Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO1992011496A1 (en) * 1990-12-18 1992-07-09 Hans Ackeret Solar collector sun tracking device
US5622078A (en) * 1995-08-21 1997-04-22 Mattson; Brad A. Linear/helix movement support/solar tracker
EP1241416A2 (en) * 2001-03-16 2002-09-18 Emilio Cantore Solar panel system with means allowing the panels to follow the direction of the sun

Family Cites Families (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4235222A (en) * 1978-10-19 1980-11-25 Istrate Ionescu Heat-responsive alignment system and solar collection device

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO1992011496A1 (en) * 1990-12-18 1992-07-09 Hans Ackeret Solar collector sun tracking device
US5622078A (en) * 1995-08-21 1997-04-22 Mattson; Brad A. Linear/helix movement support/solar tracker
EP1241416A2 (en) * 2001-03-16 2002-09-18 Emilio Cantore Solar panel system with means allowing the panels to follow the direction of the sun

Cited By (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1632786A1 (en) * 2004-09-03 2006-03-08 Manuel Lahuerta Romeo Solar Tracker
ES2317774A1 (en) * 2006-03-08 2009-04-16 Krinner Innovation Gmbh Sun position tracking device for e.g. photovoltaic module, has driving motor for pivoting solar module around axis and elevation axis, where axes are driven, such that elevation axis is guided with respect to its inclination
ES2317774B1 (en) * 2006-03-08 2009-12-29 Krinner Innovation Gmbh DEVICE FOR MONITORING THE HEIGHT OF THE SUN FOR A SOLAR MODULE.
ES2281990A1 (en) * 2006-03-16 2007-10-01 Ingenieria, Energia Y Medio Ambiente. Ingema S.L. Two-axis solar tracker
WO2008000876A1 (en) 2006-06-28 2008-01-03 Sistema Hidraulico Solar, Sl Support structure for solar trackers
ES2283233A1 (en) * 2007-03-29 2007-10-16 Jose Antonio Rodriguez Hoyo Frame structure for solar panels allowing sun following
EP2336673A3 (en) * 2009-12-08 2012-05-02 Suntop Solar Energy Co., Ltd. Sun-tracking solar energy collector apparatus
CN108150378A (en) * 2015-12-01 2018-06-12 邵作权 Solar energy assists fluid feed system

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