WO2002006628A1 - Method and apparatus for placing and interrogating downhole sensors - Google Patents

Method and apparatus for placing and interrogating downhole sensors Download PDF

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Publication number
WO2002006628A1
WO2002006628A1 PCT/US2001/022483 US0122483W WO0206628A1 WO 2002006628 A1 WO2002006628 A1 WO 2002006628A1 US 0122483 W US0122483 W US 0122483W WO 0206628 A1 WO0206628 A1 WO 0206628A1
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WO
WIPO (PCT)
Prior art keywords
recited
placing
formation
sensor
remote sensor
Prior art date
Application number
PCT/US2001/022483
Other languages
French (fr)
Inventor
Roger Lynn Schultz
Clark Edward Robison
Russell Irving Bayh, Iii
Benjamin Bernhardt Stewart, Iii
Brian George Nutley
Jamie George Oag
Nadir Mahjoub
Original Assignee
Roger Lynn Schultz
Clark Edward Robison
Russell Irving Bayh, Iii
Benjamin Bernhardt Stewart, Iii
Brian George Nutley
Jamie George Oag
Nadir Mahjoub
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 Roger Lynn Schultz, Clark Edward Robison, Russell Irving Bayh, Iii, Benjamin Bernhardt Stewart, Iii, Brian George Nutley, Jamie George Oag, Nadir Mahjoub filed Critical Roger Lynn Schultz
Priority to CA002416111A priority Critical patent/CA2416111A1/en
Priority to EP01984256A priority patent/EP1305499A1/en
Priority to AU2002222950A priority patent/AU2002222950A1/en
Publication of WO2002006628A1 publication Critical patent/WO2002006628A1/en
Priority to NO20030200A priority patent/NO20030200L/en

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Classifications

    • EFIXED CONSTRUCTIONS
    • E21EARTH DRILLING; MINING
    • E21BEARTH DRILLING, e.g. DEEP DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
    • E21B47/00Survey of boreholes or wells
    • E21B47/01Devices for supporting measuring instruments on drill bits, pipes, rods or wirelines; Protecting measuring instruments in boreholes against heat, shock, pressure or the like
    • EFIXED CONSTRUCTIONS
    • E21EARTH DRILLING; MINING
    • E21BEARTH DRILLING, e.g. DEEP DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
    • E21B7/00Special methods or apparatus for drilling
    • E21B7/04Directional drilling
    • E21B7/06Deflecting the direction of boreholes
    • E21B7/061Deflecting the direction of boreholes the tool shaft advancing relative to a guide, e.g. a curved tube or a whipstock

Definitions

  • the present invention relates to a method and apparatus for placing sensors downhole in a well to monitor relevant formation characteristics.
  • the sensors can be flowed into the formation in the cement, or other suitable material, used to case the well.
  • the sensors can be physically bored into the formation with a device described herein.
  • Fluid pressure in the formation is a few examples of measurements taken within the formation which are useful in reservoir analysis. Having these formation/rock measurements available external to the immediate wellbore in wells within a producing field would facilitate the determination of such formation parameters such as vertical and horizontal permeability, flow regimes outside the wellbores within the formations, relative permeability, water breakthrough condensate banking, and gas breakthrough. Determinations could also be made concerning formation depletion, injection program effectiveness, and the results of fracturing operations, including rock stresses and changes in formation orientation, during well operations.
  • cement is commonly used to set casing
  • other materials such as resins and polymers could be used. So while the term cement is used in this description, it is meant to encompass other suitable materials that .might be used now or.in the future to set casing.
  • Pressure, temperature and stress are a few examples of measurements taken within the cement that might be useful in determining the condition of the cement in a well.
  • transducers placed near the cement/wellbore interface could be used to monitor the condition of the rock or formations outside the wellbore.
  • the present invention provides a method and system that may be used to passively monitor cement integrity and reservoir/formation parameters near the wellbore at all depths and orientations outside a wellbore. These measurements may be taken without compromising the casing, cement or any other treatment outside or inside the casing. In addition, sensors may be deployed in many more locations because of the non-intrusive nature of reading the sensors once they are in place.
  • sensors are "pumped” into place by placing them into a suspension in the cement slurry at the time a well casing is being cemented.
  • the sensors are either battery operated, or of a type where external excitation, (EMF, acoustic, RF etc.) may be applied to power and operate the sensor, which will send a signal conveying the desired information.
  • EMF external excitation
  • the sensor may then be energized and interrogated using a separate piece of wellbore deployed equipment whenever it is desired to monitor cement or formation conditions.
  • This wellbore deployed equipment could be, for example, a wireline tool. Having sensors placed in this way allows many different types of measurements to be taken from the downhole environment.
  • Sensors placed close to the wellbore can be used to monitor the well integrity by disclosing information about cement condition, casing wear/condition etc. Sensors placed closer to the cement/wellbore interface provide reservoir or rock property measurements, which may be used in reservoir analysis.
  • the sensors are placed into the formation at or outside the wellbore and may be interrogated whenever it is desired to monitor well or formation conditions.
  • One method of placing the sensors into the formation is to use technology similar to side bore coring tools which remove samples in a direction that is perpendicular to the wellbore.
  • Another method involves placing the sensors into the gravel slurry used for gravel packing and frackpacking operations thus allowing the sensors to migrate into the formation with the fracpack.
  • non-intrusive downhole measurements may be taken from numerous locations in the downhole environment.
  • the integrity of the cement job can be closely monitored for initial quality, and degradation with time.
  • many transducers may be placed into the well with relatively low deployment cost.
  • very accurate measurements can be taken because of transducer placement outside the wellbore.
  • very long service life of transducers is achieved because power is supplied by a wellbore device capable of supplying transducer excitation power.
  • fluid movement and pressure behind the casing may be measured, by comparing the many available downhole measurements.
  • Figure 1 shows a flow chart for placing sensors within the cemented casing of a wellbore.
  • Figure 2 depicts a wellbore with sensors located within the cemented casing.
  • Figure 3 shows a flow chart for placing sensors into the formation.
  • Figure 4 depicts a wellbore and formation with sensors located in the formation.
  • Figure 5 shows a flow chart for placing a sensor into a formation by drilling laterally away from a wellbore.
  • Figure 6A-6C depict a tool for drilling away from a wellbore and placing a sensor into a formation.
  • Figure 1 shows a flowchart of a preferred embodiment of a method for placing sensors into a wellbore casing.
  • Figure 2 illustrates a cross-sectional view of a wellbore and casing with sensors placed therein.
  • a wellbore 240 is drilled into the earth using conventional methods and tools well known to those skilled in the art (step 110). Sensors 210 are placed into a cement slurry (step 120). A casing is placed into wellbore 240 and the cement slurry containing sensors 210 is pumped into wellbore 240 to provide a cemented casing 240 (step 130). A wellbore device (not shown in Figure 2) is then placed into wellbore 240 (step 140). Sensors 210 are then interrogated with the well bore device (step 150).
  • the wellbore device could be for example a wireline tool or a drill pipe conveyed system.
  • Sensors 210 will typically be transducers which are either battery operated, or of a type where external excitation (EMF, acoustic, RF, etc.) may be applied to power and operate the transducer, which will send a signal conveying the desired information.
  • Sensors 210 may be interrogated whenever desired to monitor cement or formation conditions.
  • Sensors 210 may be of many different types such that many different types of conditions may be monitored. Such monitored conditions include pressure, temperature, resistivity, rock properties, and formation properties. Other monitored conditions include, but are not limited to, paramagnetic properties, magnetic fields, magnetic flux leak, pulse eddy current, and polar spin. Looking at different readings taken at different locations will allow directional properties such as permeability to be examined.
  • Sensors 210 placed close to the wellbore can be used to monitor the well integrity by disclosing information about cement condition, casing wear/condition etc. Sensors 210 placed closer to the cement/wellbore interface provide reservoir or rock property measurements which may be used in reservoir analysis.
  • Non- intrusive downhole measurements may be taken from numerous locations in the downhole environment.
  • the integrity, such as micro-annulus, of the cement job can be closely monitored for initial quality and degradation with time.
  • Many sensors may be placed into the well with relatively low deployment cost.
  • Very accurate measurements can be taken because of sensor placement outside of the wellbore.
  • Very long service life of the sensors because the power is supplied by a wellbore device capable of supplying transducer excitation power. Fluid movement and pressure behind the casing may be measured by comparing the many available downhole measurements.
  • Figure 3 depicts a flow chart for a presently preferred method of placing sensors into a formation.
  • Figure 4 shows a cross-sectional view of a well bore and formation with sensors located within the formation.
  • a wellbore 440 is drilled using conventional techniques and devices well known to one skilled in the art (step 310). Formation samples are removed from the formations 420, 425, and 430 using for example, a side bore coring tool, in a direction perpendicular to wellbore 440 (step 320). The maximum distance bored out with standard coring tools is typically around 4 feet from the wellbore 440.
  • a side bore coring tool may be found in U.S. Pat. No. 5,209,309 issued to Wilson which is hereby incorporated by reference.
  • Sensors 410 are then placed into the formations 420, 425, and 430 (step 330). A sensor interrogating device is then placed into the wellbore (step 340). Sensors 410 are then interrogated whenever it is desired to gather some information that sensors 410 can gather (step 350).
  • the formations 420, 425, and 430 are fractured and packed with gravel ("fracpacking").
  • Sensors 410 are placed in the gravel slurry prior to packing the fracture.
  • sensors 410 are placed outside the wellbore and into the formation.
  • perforations 460 can be made in the wellbore 440 casing and the sensors 410 allowed to migrate outside the wellbore 440 with the gravel slurry.
  • the gravel slurry and fracpacking will be described in more detail below.
  • sensors 410 will typically be transducers which are either battery operated, or of a type where external excitation (EMF, acoustic, RF, etc.) may be applied to power and operate the transducer, which will send a signal conveying the desired information.
  • the sensors 410 may be powered using fuel cell or power cell.
  • the fuel cell or power cell may be part of the sensors 410 or built as an addition. Formation movement, noise or fluid flow (i.e. effluent flow) could be used to charge or recharge the cell power source.
  • Sensors 410 may be interrogated whenever desired to monitor cement or formation conditions. Sensors 410 may be of many different types such that many different types of conditions may be monitored.
  • Such monitored conditions include pressure, temperature, resistivity, rock properties, and formation properties.
  • Other monitored conditions include, but are not limited to, paramagnetic properties, magnetic fields, magnetic flux leak, pulse eddy current, and polar spin.
  • Sensors 410 placed close to the wellbore 440 can be used to monitor the well integrity by disclosing information about cement condition, casing wear/condition etc. Sensors 410 placed further into a formation or other surrounding substrate will provide very accurate reservoir or
  • sensors 210 and 410 may be calibrated before placement and may be recalibrated after placement in the formation or well casing. For example, a radio or acoustic signal may be sent to each or sensors 210 or 410, after placement, initiating a calibration response in each of sensors 210 or 410.
  • Non-intrusive downhole measurements may be taken from numerous locations in the downhole environment. Very accurate measurements can be taken because of optimal transducer placement outside the wellbore Very long service life of transducers because power is supplied by a wellbore device capable of supplying transducer excitation.
  • Direction formation properties may be measured by comparing the many available downhole measurements.
  • the particulate material utilized in accordance with the present invention to carry sensors 410 into formations 420, 425, and 430 is preferably graded sand which is sized based on a knowledge of the size of the formation fines and sand in an unconsolidated subterranean zone to prevent the formation fines and sand from passing through the gravel pack.
  • the graded sand generally has a particle size in the range of from about 10 to about 70 mesh, U.S. Sieve Series. Preferred sand particle size distribution ranges are one or more of 10-20 mesh, 20-40 mesh, 40- 60 mesh or 50-70 mesh, depending on the particle size and distribution of the formation fines and sand to be screened out by the graded sand.
  • the particulate material carrier liquid utilized which can also be used to fracture the unconsolidated subterranean zone if desired, can be any of the various viscous carrier liquids or fracturing fluids utilized heretofore including gelled water, oil base liquids, foams or emulsions.
  • the foams utilized have generally been comprised of water based liquids containing one or more foaming agents famed with a gas such as nitrogen.
  • the emulsions have been formed with two or more immiscible liquids.
  • a particularly useful emulsion is comprised of a water-based liquid and a liquified normally gaseous fluid such as carbon dioxide. Upon pressure release, the liquified gaseous fluid vaporizes and rapidly flows out of the formation.
  • the most common carrier liquid/fracturing fluid utilized heretofore which is also preferred for use in accordance with this invention is comprised of an aqueous liquid such as fresh water or salt water combined with a gelling agent for increasing the viscosity of the liquid.
  • aqueous liquid such as fresh water or salt water
  • gelling agent for increasing the viscosity of the liquid.
  • the increased viscosity reduces fluid loss and allows the carrier liquid to transport significant concentrations of particulate material into the subterranean zone to be completed.
  • gelling agents have been utilized including hydratable polymers which contain one or more functional groups such as hydroxyl, cis-hydoxyl, carboxyl, sulfate, sulfonate, amino or amide.
  • Particularly useful polymers are polysaccharides and derivatives thereof which contain one or more of the monosaccharides units galactose, mannose, glucoside, glucose, xylose, arabinose, fructose, glucuronic acid or pyranosyl sulfate.
  • Various natural hydratable polymers contain the foregoing functional groups and units including guar gum and derivatives thereof, cellulose and derivatives thereof, and the like. Hydratable synthetic polymers and co-polymers which contain the above mentioned functional groups can also be utilized including polyacrylate, polymeythlacrylate, polycrylamide, and the like.
  • Particularly preferred hydratable polymers which yield high viscosities upon hydration at relatively low concentrations, are guar gum and guar derivatives such as hydroxypropylguar and carboxymethylguar and cellulose derivatives such as hydroxyethylcellulose, carboxymethylcellulose and the like.
  • the viscosities of aqueous polymer solutions of the types described above can be increased by combining cross-linking agents with the polymer solutions.
  • cross-linking agents which can be utilized are multivalent metal salts or compounds which are capable of releasing such metal ions in an aqueous solution.
  • the above described gelled or gelled and cross-linked carrier liquids/fracturing fluids can also include gel breakers such as those of the enzyme type, the oxidizing type or the acid buffer type which are well known to those skilled in the art.
  • the gel breakers cause the viscous carrier liquids/fracturing fluids to revert to thin fluids that can be produced back to the surface after they have been utilized.
  • the hydraulic fracturing process generally involves pumping a viscous liquid containing suspended particulate material into the formation or zone at a rate and pressure whereby fractures are created therein.
  • the continued pumping of the fracturing fluid extends the fractures in the zone and carries the particulate material into the fractures.
  • the particulate material is deposited in the fractures and the fractures are prevented from closing by the presence of the particulate material therein.
  • the subterranean zone to be completed can be fractured prior to or during the injection of the particulate material into the zone, i.e., the pumping of the carrier liquid containing the particulate material through the slotted liner into the zone.
  • the particulate material can be pumped into the fractures as well as into the perforations and into the annuli between the sand screen and shroud and between the shroud and the well bore.
  • sensors are placed into a formation by drilling laterally away from a borehole.
  • Figure 5 shows a flow chart of this method.
  • Figures 6A - 6C depict an instrument suitable for performing this method.
  • drilling laterally away from a borehole means in a direction greater than zero degrees away from the general longitudinal (as opposed to radial) direction of the borehole at that particular location and, thus, can include drilling up or down away from the borehole when the longitudinal direction of the borehole is horizontal with respect to the earth's surface.
  • drilling laterally away from a borehole mean normal or perpendicular to the surface of the wellbore.
  • a borehole 602 is drilled using conventional methods well known to one skilled in the art (step 510).
  • a sensor placement device 600 is then placed into the borehole 602 (step 515).
  • Sensor placement device 600 consists of tubing 650, a fluid diverter 634, a control line 692, outer tubing 636, pistons 630 and 631, a sensor 622, a nozzle 632, a deflector 610, and a wire 624.
  • Tubing 650 is lowered into the borehole 602 from the earth's surface 693.
  • Tubing 650 may be coiled tubing of a type well known to one skilled in the art.
  • fluid diverters 634 Attached to tubing 650 are fluid diverters 634.
  • An opening 652 allows fluid to flow from tubing 650 through fluid diverters 634 and into control line 692 which is attached to fluid diverters 634 by Swagelok fittings.
  • At the end of control tube 692 are two pistons 630 and 631.
  • Pistons 630 and 631 provide an offset area for pressure to work against so the outer tube 636 (also .called a cylinder) will stroke downward upon application of pressure. This is the placement means for sensor 622.
  • Pistons 630 and 631 are rigidly attached to fluid or flow diverters 634.
  • pistons 630 and 631 may be a smaller size of control line than outer tubing 636.
  • Overlying control line 692 is outer tubing 636.
  • Outer tubing 636 is pushed onto pistons 630 and 631 and remains in a retracted position until pressure is applied.
  • nozzle 632 Upon application of pressure, nozzle 632 provides a jetting action for the fluid, which effectively cuts through the formation. As nozzle 632 erodes the formation material, the outer tubing 636 is allowed to move downwards.
  • Sensor 622 is attached to the inside of outer tubing 636 by a threaded carrier sub that has an open ID to allow fluid to bypass to nozzle 632.
  • Outer tube 636 has a nozzle 632 at one end.
  • Sensor 622 is attached to outer tubing 636, either by integration into the housing wall or surface mounting, and is connected to wire 624 that connects sensor 622 to a surface electronics 690.
  • Surface electronics 690 may include a recorder to record the data received from sensor 622 for later processing possibly at a remote site and may also include processing equipment to process the data received from sensor 622 as it is received.
  • surface electronics 690 may be attached to display devices such as a cathode ray tube (CRT) or similar computer monitor device and/or to a printer.
  • CTR cathode ray tube
  • the fluid pressure inside tubing 650 is increased (step 520).
  • the pressure may be increase by, for example, a pump on the surface is connected to the coiled tubing 650, which provides the high pressure source required to operate the drilling operation or by a subsurface powered pump.
  • the increased fluid pressure causes fluid to flow through opening 652 into fluid diverter 634 which diverts fluid into control line 692 causing sensor pods 680 to extend (step 525).
  • Water may be used as the working fluid unless this will adversely affect the formation sandface. In such event, a conventional mud may be used.
  • the fluid may also be a treated liquid comparable with the reservoir to minimize formation damage and may possibly be enhanced with friction reducing polymers and abrasives to enhance jet drilling efficiency.
  • the fluid flows from control line 692 into outer tubing 636.
  • the fluid exits outer tubing 636 through nozzle 632.
  • the fluid exiting through nozzle 632 cuts through the surrounding rock, thus drilling the sensor pod 680 into place as housing 636 continues to extend exerting pressure on sensor pod 680 (step 530).
  • Deflector 610 causes sensor pod 680 to be deflected outward into the formation 604.
  • the surface 612 of deflector 610 can have an angular 611 displacement away from the surface of tubing 650 of just greater than zero degrees to almost 90 degrees depending on the direction an operator wishes to place sensor pod 680.
  • the greater the angular 611 displacement the more sensor pod 680 will be deflected away from tubing 650 such that an angular 611 displacement of almost 90 degrees will result in the sensor pod being deflected in a direction almost perpendicular to the surface of tubing 650.
  • Deflector 610 may be constructed from any suitably hard material that will resist erosion.
  • alloy stainless steel is an appropriate and suitable material from which to construct deflector 610.
  • deflector 610 is welded to the base pipe and deflector 610 has a port drilled through it to allow fluid passage.
  • control line 692 may be retracted out leaving sensor pod 680 in the formation (step 535).
  • wire 624 may be better protected.
  • Sensor 622 remains connected to surface electronics 690 via wire 624.
  • Wire 624 can be an electric wire capable of carrying electronic signals or it can be a fiber optic cable.
  • sensor 622 may be recalibrated after placement of sensor 622 do nhole in the formation. Such calibration may be accomplished, for example, by means of transmissions via wire 624 or may be through radio and/or acoustic signals.
  • the present invention has been described primarily with reference to interrogating the sensors with a wireline tool, other methods of interrogating the sensor may be utilized as well without departing from the scope and spirit of the present invention.
  • the sensors could be inte ⁇ Ogated by something built into the completion or by a reflected signal that could power up and interrogate the sensor or sensors.

Abstract

A method and system to passively monitor cement integrity and reservoir/formation parameters near the wellbore (240). Different types (pressure, temperature, resistivity, rock property, formation property etc.) of sensors (210) are 'pumped' into place by placing them into a suspension in the cement slurry at the time a well casing is being cemented, by placing them in gravel pack used in frackpacking, or by a deflected drilling tool. The sensors (210) are either battery operated, or of a type where external excitation, (EMF, acoustic, RF etc.) may be applied to power and operate the sensor (210), which will send a signal conveying the desired information. The sensor (210) is then be energized and interrogated using a separate piece of wellbore (240) deployed equipment wherever it is desired to monitor cement or formation conditions. This wellbore (240) deployed equipment could be, for example, a wireline tool.

Description

METHOD AND APPARATUS FOR PLACING AND INTERROGATING DOWNHOLE SENSORS
BACKGROUND OF THE INVENTION
1. Technical Field:
The present invention relates to a method and apparatus for placing sensors downhole in a well to monitor relevant formation characteristics. Specifically, the sensors can be flowed into the formation in the cement, or other suitable material, used to case the well. Alternatively, the sensors can be physically bored into the formation with a device described herein.
2. Description of the Related Art:
Understanding an oil-bearing formation requires accurate knowledge of many conditions, such as critical rock and formation parameters at various points in the zones or formations that the oil bearing formation encompasses. Fluid pressure in the formation, its temperature, the rock stress, formation orientation and flow rates are a few examples of measurements taken within the formation which are useful in reservoir analysis. Having these formation/rock measurements available external to the immediate wellbore in wells within a producing field would facilitate the determination of such formation parameters such as vertical and horizontal permeability, flow regimes outside the wellbores within the formations, relative permeability, water breakthrough condensate banking, and gas breakthrough. Determinations could also be made concerning formation depletion, injection program effectiveness, and the results of fracturing operations, including rock stresses and changes in formation orientation, during well operations.
In addition to understanding oil bearing formations, the condition of the material used to set casing in a well is of critical interest in monitoring the integrity of a well completion. While cement is commonly used to set casing, other materials such as resins and polymers could be used. So while the term cement is used in this description, it is meant to encompass other suitable materials that .might be used now or.in the future to set casing. Pressure, temperature and stress, are a few examples of measurements taken within the cement that might be useful in determining the condition of the cement in a well. Various types of transducers placed near the cement/wellbore interface could be used to monitor the condition of the rock or formations outside the wellbore. Having these formation/rock measurements available external to the immediate wellbore in wells within a producing field would facilitate the determination of such formation parameters such as vertical and horizontal permeability, flow regimes outside the wellbores within the formations, relative permeability, potential fines migration, water breakthrough, and gas breakthrough. Determinations could also be made concerning formation depletion, fines migration, injection program effectiveness, and the results of fracturing operations, including rock stresses and changes in formation orientation, during well operations.
Historically, reservoir analysis has been limited to the use of formation measurements taken within the wellbores. Measurements taken within the wellbore are heavily influenced by wellbore effects, and cannot be used to determine some reservoir parameters. Well conditions such as the integrity of the cement job over time, pressure behind the casing, or fluid movement behind the casing cannot be monitored using the wellbore measurements.
Therefore, it is desirable to have a method and system that may be used to passively monitor reservoir/formation parameters at all depths and orientations outside a wellbore as well as having a method and system to passively monitor cement integrity. It is further desirable to have a method and system to take these measurements without compromising the casing, cement or any other treatment outside or inside the casing. SUMMARY
The present invention provides a method and system that may be used to passively monitor cement integrity and reservoir/formation parameters near the wellbore at all depths and orientations outside a wellbore. These measurements may be taken without compromising the casing, cement or any other treatment outside or inside the casing. In addition, sensors may be deployed in many more locations because of the non-intrusive nature of reading the sensors once they are in place.
In one embodiment, different types (pressure, temperature, resistivity, rock property, formation property etc.) of sensors are "pumped" into place by placing them into a suspension in the cement slurry at the time a well casing is being cemented. The sensors are either battery operated, or of a type where external excitation, (EMF, acoustic, RF etc.) may be applied to power and operate the sensor, which will send a signal conveying the desired information. The sensor may then be energized and interrogated using a separate piece of wellbore deployed equipment whenever it is desired to monitor cement or formation conditions. This wellbore deployed equipment could be, for example, a wireline tool. Having sensors placed in this way allows many different types of measurements to be taken from the downhole environment. Looking at readings taken at different locations will allow directional properties such as permeability to be examined. Sensors placed close to the wellbore can be used to monitor the well integrity by disclosing information about cement condition, casing wear/condition etc. Sensors placed closer to the cement/wellbore interface provide reservoir or rock property measurements, which may be used in reservoir analysis. In another embodiment, the sensors are placed into the formation at or outside the wellbore and may be interrogated whenever it is desired to monitor well or formation conditions. One method of placing the sensors into the formation is to use technology similar to side bore coring tools which remove samples in a direction that is perpendicular to the wellbore. Another method involves placing the sensors into the gravel slurry used for gravel packing and frackpacking operations thus allowing the sensors to migrate into the formation with the fracpack.
There are many advantages of the proposed system. First, non-intrusive downhole measurements may be taken from numerous locations in the downhole environment. Next, the integrity of the cement job can be closely monitored for initial quality, and degradation with time. Further, many transducers may be placed into the well with relatively low deployment cost. Also, very accurate measurements can be taken because of transducer placement outside the wellbore. Also, very long service life of transducers is achieved because power is supplied by a wellbore device capable of supplying transducer excitation power. Finally, fluid movement and pressure behind the casing may be measured, by comparing the many available downhole measurements.
BRIEF DESCRIPTION OF THE DRAWINGS:
The novel features believed characteristic of the invention are set forth in the appended claims. The invention itself, however, as well as a preferred mode of use, further objectives and advantages thereof, will best be understood by reference to the following detailed description of an illustrative embodiment when read in conjunction with the accompanying drawings, wherein:
Figure 1 shows a flow chart for placing sensors within the cemented casing of a wellbore.
Figure 2 depicts a wellbore with sensors located within the cemented casing.
Figure 3 shows a flow chart for placing sensors into the formation.
Figure 4 depicts a wellbore and formation with sensors located in the formation.
Figure 5 shows a flow chart for placing a sensor into a formation by drilling laterally away from a wellbore.
Figure 6A-6C depict a tool for drilling away from a wellbore and placing a sensor into a formation.
DETAILED DESCRIPTION
A presently preferred embodiment of the present invention for placing sensors into a wellbore casing will now be described with reference to Figures 1 and 2. Figure 1 shows a flowchart of a preferred embodiment of a method for placing sensors into a wellbore casing. Figure 2 illustrates a cross-sectional view of a wellbore and casing with sensors placed therein.
A wellbore 240 is drilled into the earth using conventional methods and tools well known to those skilled in the art (step 110). Sensors 210 are placed into a cement slurry (step 120). A casing is placed into wellbore 240 and the cement slurry containing sensors 210 is pumped into wellbore 240 to provide a cemented casing 240 (step 130). A wellbore device (not shown in Figure 2) is then placed into wellbore 240 (step 140). Sensors 210 are then interrogated with the well bore device (step 150). The wellbore device could be for example a wireline tool or a drill pipe conveyed system. Sensors 210 will typically be transducers which are either battery operated, or of a type where external excitation (EMF, acoustic, RF, etc.) may be applied to power and operate the transducer, which will send a signal conveying the desired information. Sensors 210 may be interrogated whenever desired to monitor cement or formation conditions. Sensors 210 may be of many different types such that many different types of conditions may be monitored. Such monitored conditions include pressure, temperature, resistivity, rock properties, and formation properties. Other monitored conditions include, but are not limited to, paramagnetic properties, magnetic fields, magnetic flux leak, pulse eddy current, and polar spin. Looking at different readings taken at different locations will allow directional properties such as permeability to be examined. Sensors 210 placed close to the wellbore can be used to monitor the well integrity by disclosing information about cement condition, casing wear/condition etc. Sensors 210 placed closer to the cement/wellbore interface provide reservoir or rock property measurements which may be used in reservoir analysis.
There are many advantages to placing sensors within the cemented well casing. Non- intrusive downhole measurements may be taken from numerous locations in the downhole environment. The integrity, such as micro-annulus, of the cement job can be closely monitored for initial quality and degradation with time. Many sensors may be placed into the well with relatively low deployment cost. Very accurate measurements can be taken because of sensor placement outside of the wellbore. Very long service life of the sensors because the power is supplied by a wellbore device capable of supplying transducer excitation power. Fluid movement and pressure behind the casing may be measured by comparing the many available downhole measurements.
Turning now to Figures 3 and 4, a method of placing sensors into a formation will be described. Figure 3 depicts a flow chart for a presently preferred method of placing sensors into a formation. Figure 4 shows a cross-sectional view of a well bore and formation with sensors located within the formation.
A wellbore 440 is drilled using conventional techniques and devices well known to one skilled in the art (step 310). Formation samples are removed from the formations 420, 425, and 430 using for example, a side bore coring tool, in a direction perpendicular to wellbore 440 (step 320). The maximum distance bored out with standard coring tools is typically around 4 feet from the wellbore 440. One example of a side bore coring tool may be found in U.S. Pat. No. 5,209,309 issued to Wilson which is hereby incorporated by reference. Sensors 410 are then placed into the formations 420, 425, and 430 (step 330). A sensor interrogating device is then placed into the wellbore (step 340). Sensors 410 are then interrogated whenever it is desired to gather some information that sensors 410 can gather (step 350).
In one variation of this method, rather than removing formation samples with a side bore coring tool, the formations 420, 425, and 430 are fractured and packed with gravel ("fracpacking"). Sensors 410 are placed in the gravel slurry prior to packing the fracture. Thus, sensors 410 are placed outside the wellbore and into the formation. Alternatively, perforations 460 can be made in the wellbore 440 casing and the sensors 410 allowed to migrate outside the wellbore 440 with the gravel slurry. The gravel slurry and fracpacking will be described in more detail below.
As with sensors 210, sensors 410 will typically be transducers which are either battery operated, or of a type where external excitation (EMF, acoustic, RF, etc.) may be applied to power and operate the transducer, which will send a signal conveying the desired information. Alternatively, the sensors 410 may be powered using fuel cell or power cell. The fuel cell or power cell may be part of the sensors 410 or built as an addition. Formation movement, noise or fluid flow (i.e. effluent flow) could be used to charge or recharge the cell power source. Sensors 410 may be interrogated whenever desired to monitor cement or formation conditions. Sensors 410 may be of many different types such that many different types of conditions may be monitored. Such monitored conditions include pressure, temperature, resistivity, rock properties, and formation properties. Other monitored conditions include, but are not limited to, paramagnetic properties, magnetic fields, magnetic flux leak, pulse eddy current, and polar spin. Sensors 410 placed close to the wellbore 440 can be used to monitor the well integrity by disclosing information about cement condition, casing wear/condition etc. Sensors 410 placed further into a formation or other surrounding substrate will provide very accurate reservoir or
rock property measurements.
It should be noted that sensors 210 and 410 may be calibrated before placement and may be recalibrated after placement in the formation or well casing. For example, a radio or acoustic signal may be sent to each or sensors 210 or 410, after placement, initiating a calibration response in each of sensors 210 or 410.
There are many advantages to placing sensors outside the wellbore. Non-intrusive downhole measurements may be taken from numerous locations in the downhole environment. Very accurate measurements can be taken because of optimal transducer placement outside the wellbore Very long service life of transducers because power is supplied by a wellbore device capable of supplying transducer excitation. Direction formation properties may be measured by comparing the many available downhole measurements.
The particulate material utilized in accordance with the present invention to carry sensors 410 into formations 420, 425, and 430 is preferably graded sand which is sized based on a knowledge of the size of the formation fines and sand in an unconsolidated subterranean zone to prevent the formation fines and sand from passing through the gravel pack. The graded sand generally has a particle size in the range of from about 10 to about 70 mesh, U.S. Sieve Series. Preferred sand particle size distribution ranges are one or more of 10-20 mesh, 20-40 mesh, 40- 60 mesh or 50-70 mesh, depending on the particle size and distribution of the formation fines and sand to be screened out by the graded sand.
The particulate material carrier liquid utilized, which can also be used to fracture the unconsolidated subterranean zone if desired, can be any of the various viscous carrier liquids or fracturing fluids utilized heretofore including gelled water, oil base liquids, foams or emulsions. The foams utilized have generally been comprised of water based liquids containing one or more foaming agents famed with a gas such as nitrogen. The emulsions have been formed with two or more immiscible liquids. A particularly useful emulsion is comprised of a water-based liquid and a liquified normally gaseous fluid such as carbon dioxide. Upon pressure release, the liquified gaseous fluid vaporizes and rapidly flows out of the formation.
The most common carrier liquid/fracturing fluid utilized heretofore which is also preferred for use in accordance with this invention is comprised of an aqueous liquid such as fresh water or salt water combined with a gelling agent for increasing the viscosity of the liquid. The increased viscosity reduces fluid loss and allows the carrier liquid to transport significant concentrations of particulate material into the subterranean zone to be completed.
A variety of gelling agents have been utilized including hydratable polymers which contain one or more functional groups such as hydroxyl, cis-hydoxyl, carboxyl, sulfate, sulfonate, amino or amide. Particularly useful polymers are polysaccharides and derivatives thereof which contain one or more of the monosaccharides units galactose, mannose, glucoside, glucose, xylose, arabinose, fructose, glucuronic acid or pyranosyl sulfate. Various natural hydratable polymers contain the foregoing functional groups and units including guar gum and derivatives thereof, cellulose and derivatives thereof, and the like. Hydratable synthetic polymers and co-polymers which contain the above mentioned functional groups can also be utilized including polyacrylate, polymeythlacrylate, polycrylamide, and the like.
Particularly preferred hydratable polymers, which yield high viscosities upon hydration at relatively low concentrations, are guar gum and guar derivatives such as hydroxypropylguar and carboxymethylguar and cellulose derivatives such as hydroxyethylcellulose, carboxymethylcellulose and the like.
The viscosities of aqueous polymer solutions of the types described above can be increased by combining cross-linking agents with the polymer solutions. Examples of cross- linking agents which can be utilized are multivalent metal salts or compounds which are capable of releasing such metal ions in an aqueous solution.
The above described gelled or gelled and cross-linked carrier liquids/fracturing fluids can also include gel breakers such as those of the enzyme type, the oxidizing type or the acid buffer type which are well known to those skilled in the art. The gel breakers cause the viscous carrier liquids/fracturing fluids to revert to thin fluids that can be produced back to the surface after they have been utilized.
The creation of one or more fractures in the unconsolidated subterranean zone to be completed in order to stimulate the production of hydrocarbons therefrom is well known to those skilled in the art. The hydraulic fracturing process generally involves pumping a viscous liquid containing suspended particulate material into the formation or zone at a rate and pressure whereby fractures are created therein. The continued pumping of the fracturing fluid extends the fractures in the zone and carries the particulate material into the fractures. Upon the reduction of the flow of the fracturing fluid and the reduction of pressure exerted on the zone, the particulate material is deposited in the fractures and the fractures are prevented from closing by the presence of the particulate material therein.
As mentioned, the subterranean zone to be completed can be fractured prior to or during the injection of the particulate material into the zone, i.e., the pumping of the carrier liquid containing the particulate material through the slotted liner into the zone. Upon the creation of one or more fractures,- the particulate material can be pumped into the fractures as well as into the perforations and into the annuli between the sand screen and shroud and between the shroud and the well bore.
In another presently preferred embodiment, sensors are placed into a formation by drilling laterally away from a borehole. Figure 5 shows a flow chart of this method. Figures 6A - 6C depict an instrument suitable for performing this method. As used herein, drilling laterally away from a borehole means in a direction greater than zero degrees away from the general longitudinal (as opposed to radial) direction of the borehole at that particular location and, thus, can include drilling up or down away from the borehole when the longitudinal direction of the borehole is horizontal with respect to the earth's surface. Furthermore, there is no requirement that drilling laterally away from a borehole mean normal or perpendicular to the surface of the wellbore.
A borehole 602 is drilled using conventional methods well known to one skilled in the art (step 510). A sensor placement device 600 is then placed into the borehole 602 (step 515). Sensor placement device 600 consists of tubing 650, a fluid diverter 634, a control line 692, outer tubing 636, pistons 630 and 631, a sensor 622, a nozzle 632, a deflector 610, and a wire 624. Tubing 650 is lowered into the borehole 602 from the earth's surface 693. Tubing 650 may be coiled tubing of a type well known to one skilled in the art.
Attached to tubing 650 are fluid diverters 634. An opening 652 allows fluid to flow from tubing 650 through fluid diverters 634 and into control line 692 which is attached to fluid diverters 634 by Swagelok fittings. At the end of control tube 692 are two pistons 630 and 631. Pistons 630 and 631 provide an offset area for pressure to work against so the outer tube 636 (also .called a cylinder) will stroke downward upon application of pressure. This is the placement means for sensor 622. Pistons 630 and 631 are rigidly attached to fluid or flow diverters 634. In one embodiment, pistons 630 and 631 may be a smaller size of control line than outer tubing 636. Although described herein with reference to two pistons, multiple pistons may be used as well and may be deployed in a variety of directions, such as, for example, up, down, or at an angle, without departing from the scope and spirit of the present invention.
Overlying control line 692 is outer tubing 636. Outer tubing 636 is pushed onto pistons 630 and 631 and remains in a retracted position until pressure is applied. Upon application of pressure, nozzle 632 provides a jetting action for the fluid, which effectively cuts through the formation. As nozzle 632 erodes the formation material, the outer tubing 636 is allowed to move downwards. Sensor 622 is attached to the inside of outer tubing 636 by a threaded carrier sub that has an open ID to allow fluid to bypass to nozzle 632. Outer tube 636 has a nozzle 632 at one end. Sensor 622 is attached to outer tubing 636, either by integration into the housing wall or surface mounting, and is connected to wire 624 that connects sensor 622 to a surface electronics 690. Surface electronics 690 may include a recorder to record the data received from sensor 622 for later processing possibly at a remote site and may also include processing equipment to process the data received from sensor 622 as it is received. Furthermore, surface electronics 690 may be attached to display devices such as a cathode ray tube (CRT) or similar computer monitor device and/or to a printer.
After sensor placement device 600 has been placed down hole (step 515), the fluid pressure inside tubing 650 is increased (step 520). The pressure may be increase by, for example, a pump on the surface is connected to the coiled tubing 650, which provides the high pressure source required to operate the drilling operation or by a subsurface powered pump. The increased fluid pressure causes fluid to flow through opening 652 into fluid diverter 634 which diverts fluid into control line 692 causing sensor pods 680 to extend (step 525). Water may be used as the working fluid unless this will adversely affect the formation sandface. In such event, a conventional mud may be used. The fluid may also be a treated liquid comparable with the reservoir to minimize formation damage and may possibly be enhanced with friction reducing polymers and abrasives to enhance jet drilling efficiency. The fluid flows from control line 692 into outer tubing 636. The fluid exits outer tubing 636 through nozzle 632. The fluid exiting through nozzle 632 cuts through the surrounding rock, thus drilling the sensor pod 680 into place as housing 636 continues to extend exerting pressure on sensor pod 680 (step 530). Deflector 610 causes sensor pod 680 to be deflected outward into the formation 604.
The surface 612 of deflector 610 can have an angular 611 displacement away from the surface of tubing 650 of just greater than zero degrees to almost 90 degrees depending on the direction an operator wishes to place sensor pod 680. The greater the angular 611 displacement, the more sensor pod 680 will be deflected away from tubing 650 such that an angular 611 displacement of almost 90 degrees will result in the sensor pod being deflected in a direction almost perpendicular to the surface of tubing 650. Deflector 610 may be constructed from any suitably hard material that will resist erosion. For example, alloy stainless steel is an appropriate and suitable material from which to construct deflector 610. Typically, deflector 610 is welded to the base pipe and deflector 610 has a port drilled through it to allow fluid passage. Once sensor pod 680 has been drilled into the formation 604, control line 692 may be retracted out leaving sensor pod 680 in the formation (step 535). By leaving control line 692 in place rather than removing it after sensor placement, wire 624 may be better protected. Sensor 622 remains connected to surface electronics 690 via wire 624. Wire 624 can be an electric wire capable of carrying electronic signals or it can be a fiber optic cable.
It should be noted that sensor 622 may be recalibrated after placement of sensor 622 do nhole in the formation. Such calibration may be accomplished, for example, by means of transmissions via wire 624 or may be through radio and/or acoustic signals.
To aid in understanding the present invention, refer to the following analogy. Consider a garden hose with a nozzle attached to the end. With the end of the nozzle pushed into the ground, increase the water pressure in the garden hose. The water exiting the nozzle provides an effective drilling tool that allows the hose to be pushed into the ground. This is the principle behind the present invention. The outer tubing will stroke downwards as the formation material is removed. The wire attached to the sensor must have enough length to accommodate the stoke length of the cylinder. The wire may feed through the deflector and continue up the outside of the coiled tubing. This may be useful if the coiled tubing is removed after sensor placement. Otherwise as discussed above, the wire will remain inside the coiled tubing where it is better , protected.
Although the present invention has been described primarily with reference to interrogating the sensors with a wireline tool, other methods of interrogating the sensor may be utilized as well without departing from the scope and spirit of the present invention. For example, the sensors could be inteπOgated by something built into the completion or by a reflected signal that could power up and interrogate the sensor or sensors.
The description of the present invention has been presented for purposes of illustration and description, but is not intended to be exhaustive or limited to the invention in the form disclosed. Many modifications and variations will be apparent to those of ordinary skill in the art. The embodiment was chosen and described in order to best explain the principles of the invention, the practical application, and to enable others of ordinary skill in the art to understand the invention for various embodiments with various modifications as are suited to the particular use contemplated.

Claims

WE CLAIM:
1. A method of placing sensors in a borehole, the steps comprising: drilling a borehole with a drill apparatus; forming a well casing therein; and placing at least one remote sensor into cement slurry as the well casing is being cemented.
2. The method as recited in claim 1, wherein the at least one remote sensor comprises a transducer.
3. The method as recited in claim 1, wherein the at least one remote sensor comprises a pressure measurement device.
4. The method as recited in claim 1, wherein the at least one remote sensor comprises temperature measurement device.
5. The method as recited in claim 1, wherein the at least one remote sensor comprises a resistivity measurement device.
6. The method as recited in claim 1, wherein the at least one remote sensor measures rock properties..
7. The method as recited in claim 1, wherein the at least one remote sensor measures formation properties.
8. The method as recited in claim 1, wherein the at least one remote sensor measures paramagnetic properties.
9. The method as recited in claim 1, wherein the at least one remote sensor measures magnetic fields.
10. The method as recited in claim 1, wherein the at least one remote sensor measures pulse eddy current.
11. The method as recited in claim 1, wherein the at least one remote sensor measures polar spin.
12. The method as recited in claim 1, wherein the at least one remote sensor measures magnetic flux leak.
13. The method as recited in claim 1, wherein the at least one remote sensor measures well integrity.
14. The method as recited in claim 1, wherein the at least one remote sensor measures casing wear.
15. A method of placing sensors in a geologic formation, the steps comprising: drilling a wellbore with a drill apparatus; placing a at least one sensor outside said borehole; and placing a wellbore device into said wellbore to interrogate said at least one sensor.
16. The method as recited in claim 15, wherein said at least one sensor is powered by external excitation.
17. A method of placing sensors in a geologic formation, the steps comprising: drilling a wellbore with a drill apparatus; removing formation material in a direction away from said wellbore to produce a sensor placement area; and placing a sensor into said sensor placement area.
18. The method as recited in claim 17, wherein said removing formation material step comprises using a side bore coring tool.
19. The method as recited in claim 17, wherein said removing formation material step comprises. fracturing and packing the formation with a slurry and wherein said placing step comprises placing said sensor in said slurry prior to packing the formation with said slurry.
20. An apparatus for placing a sensor in a geologic formation, comprising: a first tube, a second tube attached to said first tube wherein the end of said second tube opposite from end attached to said first tube comprises a nozzle for expressing fluid and wherein said second tube comprises clasping means for attaching a sensor thereto; and deflectors attached to the outside surface of said first tube for deflecting said second tube away from said first tube.
AMENDED CLAIMS
[received by the International Bureau on 31 December 2001 (31.12.01); original claims 1, 16 and 17 amended; original claims 15, 18 and 19 cancelled; new claims 21-27 added; remaining claims unchanged (4 pages)]
1. (Amended) A method of placing sensors in a borehole, the steps comprising: drilling a borehole with a drill apparatus; forming a well casing therein; and placing at least one remote sensor into cement slurry as the well casing is being cemented; wherein said remote sensor has no external connections.
2. The method as recited in claim 1, wherein the at least one remote sensor comprises a transducer.
3. The method as recited in claim 1, wherein the at least one remote sensor comprises a pressure measurement device.
4. The method as recited in claim 1, wherein the at least one remote sensor comprises temperature measurement device.
5. The method as recited in claim 1, wherein the at least one remote sensor comprises a resistivity measurement device.
6. The method as recited in claim 1, wherein the at least one remote sensor measures rock properties.
7. The method as recited in claim 1, wherein the at least one remote sensor measures formation properties.
8. The method as recited in claim 1, wherein the at least one remote sensor measures paramagnetic properties.
9. The method as recited in claim 1, wherein the at least one remote sensor measures magnetic fields.
10. The method as recited in claim 1, wherein the at least one remote sensor measures pulse eddy current.
11. The method as recited in claim 1, wherein the at least one remote sensor measures polar spin.
12. The method as recited in claim 1, wherein the at least one remote sensor measures magnetic flux leak.
13. The method as recited in claim 1 , wherein the at least one remote sensor measures well integrity.
14. The method as recited in claim 1, wherein the at least one remote sensor measures casing wear.
16. (Amended) The method as recited in claim [15] 27, wherein said at least one sensor is powered by external excitation.
17. (Amended) A method of placing sensors in a geologic formation, the steps comprising: drilling a wellbore with a drill apparatus; removing formation material in a direction away from said wellbore to produce a sensor placement area; and placing a sensor into said sensor placement area; wherein said removing formation material step comprises fracturing and packing the formation with a slurry and wherein said placing step comprises placing said sensor in said slurry prior to packing the formation with said slurry.
20. An apparatus for placing a sensor in a geologic formation, comprising: a first tube, a second tube attached to said first tube wherein the end of said second tube opposite from end attached to said first tube comprises a nozzle for expressing fluid and wherein said second tube comprises clasping means for attaching a sensor thereto; and deflectors attached to the outside surface of said first tube for deflecting said second tube away from said first tube.
—21. A method of placing sensors in a borehole, the steps comprising: drilling a borehole with a drill apparatus; forming a well casing therein; suspending sensors in a cement slurry to form a slurry suspension; and cementing said well casing using said slurry suspension. —22. The method of claim 1, wherein said sensor contains a member of the group consisting of a transducer, a pressure measurement device, a temperature measurement device, and a resistivity measurement device.
—23. The method of claim 21 , wherein said sensor measures a member of the group consisting of rock properties, formation properties, paramagnetic properties, magnetic fields, pulse eddy current, polar spin, magnetic flux leak, well integrity, and casing wear.
-24. The method of claim 21 , wherein said sensor is powered by battery.
-25. The method of claim 21, wherein said sensor is powered by external excitation.
—26. A method of placing sensors in a borehole, the steps comprising: drilling a borehole with a drill apparatus; forming a well casing therein; and placing at least one remote sensor into cement slurry as the well casing is being cemented; wherein said remote sensor remains in said borehole permanently.
—27. A method of placing sensors in a wellbore, comprising the steps of: fracturing a formation contacted by the wellbore; placing sensors within a gravel packing slurry; pumping said gravel packing slurry into the formation such that said sensors are carried into said formation.
PCT/US2001/022483 2000-07-17 2001-07-17 Method and apparatus for placing and interrogating downhole sensors WO2002006628A1 (en)

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Cited By (23)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6766854B2 (en) 1997-06-02 2004-07-27 Schlumberger Technology Corporation Well-bore sensor apparatus and method
CN101892830A (en) * 2010-04-27 2010-11-24 北京科技大学 Deep ground stress measurement while drilling (MWD) system
CN101936159A (en) * 2010-08-30 2011-01-05 中国石油集团钻井工程技术研究院 Method for recognizing lithological characters while drilling
CN102341562A (en) * 2009-03-06 2012-02-01 Bp北美公司 Apparatus and method for wireless sensor to monitor barrier system integrity
US8162050B2 (en) 2007-04-02 2012-04-24 Halliburton Energy Services Inc. Use of micro-electro-mechanical systems (MEMS) in well treatments
US8291975B2 (en) 2007-04-02 2012-10-23 Halliburton Energy Services Inc. Use of micro-electro-mechanical systems (MEMS) in well treatments
US8297352B2 (en) 2007-04-02 2012-10-30 Halliburton Energy Services, Inc. Use of micro-electro-mechanical systems (MEMS) in well treatments
US8297353B2 (en) 2007-04-02 2012-10-30 Halliburton Energy Services, Inc. Use of micro-electro-mechanical systems (MEMS) in well treatments
US8302686B2 (en) 2007-04-02 2012-11-06 Halliburton Energy Services Inc. Use of micro-electro-mechanical systems (MEMS) in well treatments
US8316936B2 (en) 2007-04-02 2012-11-27 Halliburton Energy Services Inc. Use of micro-electro-mechanical systems (MEMS) in well treatments
US8342242B2 (en) 2007-04-02 2013-01-01 Halliburton Energy Services, Inc. Use of micro-electro-mechanical systems MEMS in well treatments
WO2013169255A1 (en) * 2012-05-10 2013-11-14 Bp Corporation North America Inc. Methods and systems for long-term monitoring of a well system during abandonment
US9194207B2 (en) 2007-04-02 2015-11-24 Halliburton Energy Services, Inc. Surface wellbore operating equipment utilizing MEMS sensors
US9200500B2 (en) 2007-04-02 2015-12-01 Halliburton Energy Services, Inc. Use of sensors coated with elastomer for subterranean operations
US9394785B2 (en) 2007-04-02 2016-07-19 Halliburton Energy Services, Inc. Methods and apparatus for evaluating downhole conditions through RFID sensing
US9494032B2 (en) 2007-04-02 2016-11-15 Halliburton Energy Services, Inc. Methods and apparatus for evaluating downhole conditions with RFID MEMS sensors
US9732584B2 (en) 2007-04-02 2017-08-15 Halliburton Energy Services, Inc. Use of micro-electro-mechanical systems (MEMS) in well treatments
US9822631B2 (en) 2007-04-02 2017-11-21 Halliburton Energy Services, Inc. Monitoring downhole parameters using MEMS
US9879519B2 (en) 2007-04-02 2018-01-30 Halliburton Energy Services, Inc. Methods and apparatus for evaluating downhole conditions through fluid sensing
EP3379022A1 (en) * 2017-03-21 2018-09-26 Welltec A/S Downhole sensor system
US20180274336A1 (en) * 2017-03-21 2018-09-27 Welltec A/S Downhole completion system
US10358914B2 (en) 2007-04-02 2019-07-23 Halliburton Energy Services, Inc. Methods and systems for detecting RFID tags in a borehole environment
GB2604548B (en) * 2020-01-31 2024-04-03 Halliburton Energy Services Inc Fiber deployed via a top plug

Families Citing this family (108)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6857486B2 (en) 2001-08-19 2005-02-22 Smart Drilling And Completion, Inc. High power umbilicals for subterranean electric drilling machines and remotely operated vehicles
US6536520B1 (en) 2000-04-17 2003-03-25 Weatherford/Lamb, Inc. Top drive casing system
US20080262737A1 (en) * 2007-04-19 2008-10-23 Baker Hughes Incorporated System and Method for Monitoring and Controlling Production from Wells
US8682589B2 (en) * 1998-12-21 2014-03-25 Baker Hughes Incorporated Apparatus and method for managing supply of additive at wellsites
US6429784B1 (en) * 1999-02-19 2002-08-06 Dresser Industries, Inc. Casing mounted sensors, actuators and generators
US6854533B2 (en) * 2002-12-20 2005-02-15 Weatherford/Lamb, Inc. Apparatus and method for drilling with casing
US9586699B1 (en) 1999-08-16 2017-03-07 Smart Drilling And Completion, Inc. Methods and apparatus for monitoring and fixing holes in composite aircraft
US6989764B2 (en) * 2000-03-28 2006-01-24 Schlumberger Technology Corporation Apparatus and method for downhole well equipment and process management, identification, and actuation
US7385523B2 (en) * 2000-03-28 2008-06-10 Schlumberger Technology Corporation Apparatus and method for downhole well equipment and process management, identification, and operation
US8515677B1 (en) 2002-08-15 2013-08-20 Smart Drilling And Completion, Inc. Methods and apparatus to prevent failures of fiber-reinforced composite materials under compressive stresses caused by fluids and gases invading microfractures in the materials
US9625361B1 (en) 2001-08-19 2017-04-18 Smart Drilling And Completion, Inc. Methods and apparatus to prevent failures of fiber-reinforced composite materials under compressive stresses caused by fluids and gases invading microfractures in the materials
US7696901B2 (en) * 2002-03-22 2010-04-13 Schlumberger Technology Corporation Methods and apparatus for photonic power conversion downhole
US7894297B2 (en) * 2002-03-22 2011-02-22 Schlumberger Technology Corporation Methods and apparatus for borehole sensing including downhole tension sensing
US6691780B2 (en) 2002-04-18 2004-02-17 Halliburton Energy Services, Inc. Tracking of particulate flowback in subterranean wells
US20030205376A1 (en) * 2002-04-19 2003-11-06 Schlumberger Technology Corporation Means and Method for Assessing the Geometry of a Subterranean Fracture During or After a Hydraulic Fracturing Treatment
US6915848B2 (en) 2002-07-30 2005-07-12 Schlumberger Technology Corporation Universal downhole tool control apparatus and methods
US6776240B2 (en) 2002-07-30 2004-08-17 Schlumberger Technology Corporation Downhole valve
US7730965B2 (en) 2002-12-13 2010-06-08 Weatherford/Lamb, Inc. Retractable joint and cementing shoe for use in completing a wellbore
US6978832B2 (en) * 2002-09-09 2005-12-27 Halliburton Energy Services, Inc. Downhole sensing with fiber in the formation
US7219730B2 (en) 2002-09-27 2007-05-22 Weatherford/Lamb, Inc. Smart cementing systems
USRE42877E1 (en) 2003-02-07 2011-11-01 Weatherford/Lamb, Inc. Methods and apparatus for wellbore construction and completion
US20040182147A1 (en) * 2003-03-19 2004-09-23 Rambow Frederick H. K. System and method for measuring compaction and other formation properties through cased wellbores
US7158049B2 (en) * 2003-03-24 2007-01-02 Schlumberger Technology Corporation Wireless communication circuit
US20040252748A1 (en) * 2003-06-13 2004-12-16 Gleitman Daniel D. Fiber optic sensing systems and methods
US7252152B2 (en) 2003-06-18 2007-08-07 Weatherford/Lamb, Inc. Methods and apparatus for actuating a downhole tool
US7650944B1 (en) 2003-07-11 2010-01-26 Weatherford/Lamb, Inc. Vessel for well intervention
US6955218B2 (en) 2003-08-15 2005-10-18 Weatherford/Lamb, Inc. Placing fiber optic sensor line
US20050173116A1 (en) 2004-02-10 2005-08-11 Nguyen Philip D. Resin compositions and methods of using resin compositions to control proppant flow-back
US7211547B2 (en) 2004-03-03 2007-05-01 Halliburton Energy Services, Inc. Resin compositions and methods of using such resin compositions in subterranean applications
US7299875B2 (en) 2004-06-08 2007-11-27 Halliburton Energy Services, Inc. Methods for controlling particulate migration
US7140434B2 (en) * 2004-07-08 2006-11-28 Schlumberger Technology Corporation Sensor system
US7757768B2 (en) 2004-10-08 2010-07-20 Halliburton Energy Services, Inc. Method and composition for enhancing coverage and displacement of treatment fluids into subterranean formations
US7883740B2 (en) 2004-12-12 2011-02-08 Halliburton Energy Services, Inc. Low-quality particulates and methods of making and using improved low-quality particulates
CA2538196C (en) 2005-02-28 2011-10-11 Weatherford/Lamb, Inc. Deep water drilling with casing
US7673686B2 (en) 2005-03-29 2010-03-09 Halliburton Energy Services, Inc. Method of stabilizing unconsolidated formation for sand control
US7278480B2 (en) * 2005-03-31 2007-10-09 Schlumberger Technology Corporation Apparatus and method for sensing downhole parameters
US7318474B2 (en) 2005-07-11 2008-01-15 Halliburton Energy Services, Inc. Methods and compositions for controlling formation fines and reducing proppant flow-back
US7926591B2 (en) 2006-02-10 2011-04-19 Halliburton Energy Services, Inc. Aqueous-based emulsified consolidating agents suitable for use in drill-in applications
US7819192B2 (en) 2006-02-10 2010-10-26 Halliburton Energy Services, Inc. Consolidating agent emulsions and associated methods
US8613320B2 (en) 2006-02-10 2013-12-24 Halliburton Energy Services, Inc. Compositions and applications of resins in treating subterranean formations
US7665517B2 (en) 2006-02-15 2010-02-23 Halliburton Energy Services, Inc. Methods of cleaning sand control screens and gravel packs
US7398680B2 (en) * 2006-04-05 2008-07-15 Halliburton Energy Services, Inc. Tracking fluid displacement along a wellbore using real time temperature measurements
US20070234789A1 (en) * 2006-04-05 2007-10-11 Gerard Glasbergen Fluid distribution determination and optimization with real time temperature measurement
US7599469B2 (en) * 2006-04-28 2009-10-06 Cameron International Corporation Non-intrusive pressure gage
GB2451784B (en) 2006-05-12 2011-06-01 Weatherford Lamb Stage cementing methods used in casing while drilling
US8276689B2 (en) 2006-05-22 2012-10-02 Weatherford/Lamb, Inc. Methods and apparatus for drilling with casing
US7598898B1 (en) 2006-09-13 2009-10-06 Hexion Specialty Chemicals, Inc. Method for using logging device with down-hole transceiver for operation in extreme temperatures
US7450053B2 (en) * 2006-09-13 2008-11-11 Hexion Specialty Chemicals, Inc. Logging device with down-hole transceiver for operation in extreme temperatures
US7602668B2 (en) * 2006-11-03 2009-10-13 Schlumberger Technology Corporation Downhole sensor networks using wireless communication
US7934557B2 (en) 2007-02-15 2011-05-03 Halliburton Energy Services, Inc. Methods of completing wells for controlling water and particulate production
US20080257544A1 (en) * 2007-04-19 2008-10-23 Baker Hughes Incorporated System and Method for Crossflow Detection and Intervention in Production Wellbores
US7711486B2 (en) * 2007-04-19 2010-05-04 Baker Hughes Incorporated System and method for monitoring physical condition of production well equipment and controlling well production
US7805248B2 (en) * 2007-04-19 2010-09-28 Baker Hughes Incorporated System and method for water breakthrough detection and intervention in a production well
US20100044027A1 (en) 2008-08-20 2010-02-25 Baker Hughes Incorporated Arrangement and method for sending and/or sealing cement at a liner hanger
US7762329B1 (en) 2009-01-27 2010-07-27 Halliburton Energy Services, Inc. Methods for servicing well bores with hardenable resin compositions
US20110088462A1 (en) * 2009-10-21 2011-04-21 Halliburton Energy Services, Inc. Downhole monitoring with distributed acoustic/vibration, strain and/or density sensing
US20110090496A1 (en) * 2009-10-21 2011-04-21 Halliburton Energy Services, Inc. Downhole monitoring with distributed optical density, temperature and/or strain sensing
US9388686B2 (en) 2010-01-13 2016-07-12 Halliburton Energy Services, Inc. Maximizing hydrocarbon production while controlling phase behavior or precipitation of reservoir impairing liquids or solids
CN101892831B (en) * 2010-06-13 2012-10-31 西南石油大学 Method for measuring displacement efficiency of cement slurry by using temperature sensing device
US8505625B2 (en) 2010-06-16 2013-08-13 Halliburton Energy Services, Inc. Controlling well operations based on monitored parameters of cement health
US8930143B2 (en) 2010-07-14 2015-01-06 Halliburton Energy Services, Inc. Resolution enhancement for subterranean well distributed optical measurements
US8584519B2 (en) 2010-07-19 2013-11-19 Halliburton Energy Services, Inc. Communication through an enclosure of a line
US8511383B2 (en) 2010-10-20 2013-08-20 Halliburton Energy Services, Inc. Bottom hole assembly
US8636063B2 (en) 2011-02-16 2014-01-28 Halliburton Energy Services, Inc. Cement slurry monitoring
US8646520B2 (en) * 2011-03-15 2014-02-11 Baker Hughes Incorporated Precision marking of subsurface locations
US9075155B2 (en) 2011-04-08 2015-07-07 Halliburton Energy Services, Inc. Optical fiber based downhole seismic sensor systems and methods
GB201108098D0 (en) * 2011-05-16 2011-06-29 Intelligent Well Controls Ltd Determining whether a wellbore cementation operation has been performed correctly
EP2530239A1 (en) * 2011-05-31 2012-12-05 Siemens Aktiengesellschaft Injection system for an oil conveying system
US9127532B2 (en) 2011-09-07 2015-09-08 Halliburton Energy Services, Inc. Optical casing collar locator systems and methods
US9127531B2 (en) 2011-09-07 2015-09-08 Halliburton Energy Services, Inc. Optical casing collar locator systems and methods
US9297767B2 (en) 2011-10-05 2016-03-29 Halliburton Energy Services, Inc. Downhole species selective optical fiber sensor systems and methods
US8215164B1 (en) * 2012-01-02 2012-07-10 HydroConfidence Inc. Systems and methods for monitoring groundwater, rock, and casing for production flow and leakage of hydrocarbon fluids
US10060250B2 (en) 2012-03-13 2018-08-28 Halliburton Energy Services, Inc. Downhole systems and methods for water source determination
WO2013142484A2 (en) 2012-03-19 2013-09-26 Battelle Memorial Institute Apparatus and method for remotely determining the structural intergrity of a well or similar structure
US20130299165A1 (en) * 2012-05-10 2013-11-14 Bp Corporation North America Inc. Methods and systems for long-term monitoring of a well system during abandonment
US8893785B2 (en) 2012-06-12 2014-11-25 Halliburton Energy Services, Inc. Location of downhole lines
US9823373B2 (en) 2012-11-08 2017-11-21 Halliburton Energy Services, Inc. Acoustic telemetry with distributed acoustic sensing system
US9068445B2 (en) 2012-12-17 2015-06-30 Baker Hughes Incorporated Sensing indicator having RFID tag, downhole tool, and method thereof
US9239406B2 (en) 2012-12-18 2016-01-19 Halliburton Energy Services, Inc. Downhole treatment monitoring systems and methods using ion selective fiber sensors
US9434875B1 (en) 2014-12-16 2016-09-06 Carbo Ceramics Inc. Electrically-conductive proppant and methods for making and using same
WO2014107608A1 (en) 2013-01-04 2014-07-10 Carbo Ceramics Inc. Electrically conductive proppant and methods for detecting, locating and characterizing the electrically conductive proppant
US11008505B2 (en) 2013-01-04 2021-05-18 Carbo Ceramics Inc. Electrically conductive proppant
CA2815589C (en) * 2013-04-30 2016-01-05 Baker Hughes Incorporated Method of real time monitoring of well operations using self-sensing treatment fluids
WO2015051222A1 (en) * 2013-10-03 2015-04-09 Schlumberger Canada Limited System and methodology for monitoring in a borehole
US9709696B2 (en) * 2013-10-16 2017-07-18 Halliburton Energy Services, Inc. Intensity-independent optical computing device
US20150198038A1 (en) 2014-01-15 2015-07-16 Baker Hughes Incorporated Methods and systems for monitoring well integrity and increasing the lifetime of a well in a subterranean formation
WO2015134705A2 (en) 2014-03-05 2015-09-11 William Marsh Rice University Systems and methods for fracture mapping via frequency-changing integrated chips
GB2538417A (en) * 2014-03-07 2016-11-16 Halliburton Energy Services Inc Wavelength-dependent light intensity modulation in multivariate optical computing devices using polarizers
US9797218B2 (en) * 2014-05-15 2017-10-24 Baker Hughes Incorporated Wellbore systems with hydrocarbon leak detection apparatus and methods
FR3021992B1 (en) * 2014-06-04 2019-08-16 Gdf Suez METHOD AND SYSTEM FOR OPERATING AND MONITORING A FLUID EXTRACTION OR STORAGE WELL
WO2016019247A1 (en) * 2014-08-01 2016-02-04 William Marsh Rice University Systems and methods for monitoring cement quality in a cased well environment with integrated chips
US9551210B2 (en) 2014-08-15 2017-01-24 Carbo Ceramics Inc. Systems and methods for removal of electromagnetic dispersion and attenuation for imaging of proppant in an induced fracture
CA2995062C (en) * 2015-09-18 2021-01-12 Halliburton Energy Services, Inc. Zonal representation for flow visualization
WO2017105423A1 (en) * 2015-12-16 2017-06-22 Halliburton Energy Services, Inc. Using electro acoustic technology to determine annulus pressure
WO2017108789A1 (en) * 2015-12-22 2017-06-29 Shell Internationale Research Maatschappij B.V. Smart well plug and method for inspecting the integrity of a barrier in an underground wellbore
WO2017146675A1 (en) * 2016-02-22 2017-08-31 Halliburton Energy Services, Inc. Remote actuation of downhole sensors
US10655448B2 (en) 2016-03-29 2020-05-19 Halliburton Energy Services, Inc. Downhole cement strain gauge
WO2017205565A1 (en) 2016-05-25 2017-11-30 William Marsh Rice University Methods and systems related to remote measuring and sensing
US10113410B2 (en) * 2016-09-30 2018-10-30 Onesubsea Ip Uk Limited Systems and methods for wirelessly monitoring well integrity
US20200032643A1 (en) * 2016-12-07 2020-01-30 Halliburton Energy Services, Inc. Downhole telemetry system
WO2018111222A1 (en) * 2016-12-12 2018-06-21 Halliburton Energy Services, Inc. Chemical sensing using magnetic complexes
EP3379024A1 (en) * 2017-03-21 2018-09-26 Welltec A/S Downhole drilling system
CN109838229B (en) * 2017-11-27 2022-10-28 中石化石油工程技术服务有限公司 Electromagnetic wave resistivity data processing method
US11649717B2 (en) 2018-09-17 2023-05-16 Saudi Arabian Oil Company Systems and methods for sensing downhole cement sheath parameters
WO2020081057A1 (en) * 2018-10-15 2020-04-23 Ozzie's Enterprises LLC Borehole mapping tool and methods of mapping boreholes
US10644146B1 (en) 2018-11-13 2020-05-05 Nxp Usa, Inc. Vertical bi-directional switches and method for making same
US11293276B2 (en) * 2019-07-19 2022-04-05 Exxonmobil Upstream Research Company Monitoring a fracture in a hydrocarbon well
US11624258B2 (en) 2021-08-11 2023-04-11 Saudi Arabian Oil Company Fail-safe stage tool and down hole sensor

Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4850440A (en) * 1986-08-13 1989-07-25 Smet Nic H W Method and device for making a hole in the ground
US5189415A (en) * 1990-11-09 1993-02-23 Japan National Oil Corporation Receiving apparatus
US5209309A (en) * 1991-08-16 1993-05-11 Wilson Bobby T Triangular core cutting tool
US5524709A (en) * 1995-05-04 1996-06-11 Atlantic Richfield Company Method for acoustically coupling sensors in a wellbore
US5720354A (en) * 1996-01-11 1998-02-24 Vermeer Manufacturing Company Trenchless underground boring system with boring tool location
US6070662A (en) * 1998-08-18 2000-06-06 Schlumberger Technology Corporation Formation pressure measurement with remote sensors in cased boreholes

Family Cites Families (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3489219A (en) * 1966-03-10 1970-01-13 Halliburton Co Method of locating tops of fluids in an annulus
US4120166A (en) * 1977-03-25 1978-10-17 Exxon Production Research Company Cement monitoring method
US4750561A (en) 1985-12-23 1988-06-14 Ben Wade Oaks Dickinson Gravel packing system for a production radial tube
FR2600172B1 (en) * 1986-01-17 1988-08-26 Inst Francais Du Petrole DEVICE FOR INSTALLING SEISMIC SENSORS IN A PETROLEUM PRODUCTION WELL
US4787465A (en) 1986-04-18 1988-11-29 Ben Wade Oakes Dickinson Iii Et Al. Hydraulic drilling apparatus and method

Patent Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4850440A (en) * 1986-08-13 1989-07-25 Smet Nic H W Method and device for making a hole in the ground
US5189415A (en) * 1990-11-09 1993-02-23 Japan National Oil Corporation Receiving apparatus
US5209309A (en) * 1991-08-16 1993-05-11 Wilson Bobby T Triangular core cutting tool
US5524709A (en) * 1995-05-04 1996-06-11 Atlantic Richfield Company Method for acoustically coupling sensors in a wellbore
US5720354A (en) * 1996-01-11 1998-02-24 Vermeer Manufacturing Company Trenchless underground boring system with boring tool location
US6070662A (en) * 1998-08-18 2000-06-06 Schlumberger Technology Corporation Formation pressure measurement with remote sensors in cased boreholes

Cited By (29)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6766854B2 (en) 1997-06-02 2004-07-27 Schlumberger Technology Corporation Well-bore sensor apparatus and method
US9879519B2 (en) 2007-04-02 2018-01-30 Halliburton Energy Services, Inc. Methods and apparatus for evaluating downhole conditions through fluid sensing
US9822631B2 (en) 2007-04-02 2017-11-21 Halliburton Energy Services, Inc. Monitoring downhole parameters using MEMS
US10358914B2 (en) 2007-04-02 2019-07-23 Halliburton Energy Services, Inc. Methods and systems for detecting RFID tags in a borehole environment
US8162050B2 (en) 2007-04-02 2012-04-24 Halliburton Energy Services Inc. Use of micro-electro-mechanical systems (MEMS) in well treatments
US8291975B2 (en) 2007-04-02 2012-10-23 Halliburton Energy Services Inc. Use of micro-electro-mechanical systems (MEMS) in well treatments
US8297352B2 (en) 2007-04-02 2012-10-30 Halliburton Energy Services, Inc. Use of micro-electro-mechanical systems (MEMS) in well treatments
US8297353B2 (en) 2007-04-02 2012-10-30 Halliburton Energy Services, Inc. Use of micro-electro-mechanical systems (MEMS) in well treatments
US8302686B2 (en) 2007-04-02 2012-11-06 Halliburton Energy Services Inc. Use of micro-electro-mechanical systems (MEMS) in well treatments
US8316936B2 (en) 2007-04-02 2012-11-27 Halliburton Energy Services Inc. Use of micro-electro-mechanical systems (MEMS) in well treatments
US8342242B2 (en) 2007-04-02 2013-01-01 Halliburton Energy Services, Inc. Use of micro-electro-mechanical systems MEMS in well treatments
US9194207B2 (en) 2007-04-02 2015-11-24 Halliburton Energy Services, Inc. Surface wellbore operating equipment utilizing MEMS sensors
US9494032B2 (en) 2007-04-02 2016-11-15 Halliburton Energy Services, Inc. Methods and apparatus for evaluating downhole conditions with RFID MEMS sensors
US9394785B2 (en) 2007-04-02 2016-07-19 Halliburton Energy Services, Inc. Methods and apparatus for evaluating downhole conditions through RFID sensing
US9200500B2 (en) 2007-04-02 2015-12-01 Halliburton Energy Services, Inc. Use of sensors coated with elastomer for subterranean operations
US9732584B2 (en) 2007-04-02 2017-08-15 Halliburton Energy Services, Inc. Use of micro-electro-mechanical systems (MEMS) in well treatments
CN102341562A (en) * 2009-03-06 2012-02-01 Bp北美公司 Apparatus and method for wireless sensor to monitor barrier system integrity
CN102341562B (en) * 2009-03-06 2015-04-22 Bp北美公司 Method for sealing greenhouse gas
CN101892830A (en) * 2010-04-27 2010-11-24 北京科技大学 Deep ground stress measurement while drilling (MWD) system
CN101892830B (en) * 2010-04-27 2013-04-24 北京科技大学 Deep ground stress measurement while drilling (MWD) system
CN101936159A (en) * 2010-08-30 2011-01-05 中国石油集团钻井工程技术研究院 Method for recognizing lithological characters while drilling
CN101936159B (en) * 2010-08-30 2013-05-29 中国石油集团钻井工程技术研究院 Method for recognizing lithological characters while drilling
WO2013169255A1 (en) * 2012-05-10 2013-11-14 Bp Corporation North America Inc. Methods and systems for long-term monitoring of a well system during abandonment
CN110446826A (en) * 2017-03-21 2019-11-12 韦尔泰克油田解决方案股份公司 Downhole sensor system
EP3379022A1 (en) * 2017-03-21 2018-09-26 Welltec A/S Downhole sensor system
US20180274336A1 (en) * 2017-03-21 2018-09-27 Welltec A/S Downhole completion system
WO2018172303A1 (en) * 2017-03-21 2018-09-27 Welltec A/S Downhole sensor system
US10774619B2 (en) * 2017-03-21 2020-09-15 Welltec Oilfield Solutions Ag Downhole completion system
GB2604548B (en) * 2020-01-31 2024-04-03 Halliburton Energy Services Inc Fiber deployed via a top plug

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