WO2010089657A1 - Methods and systems for borehole telemetry - Google Patents
Methods and systems for borehole telemetry Download PDFInfo
- Publication number
- WO2010089657A1 WO2010089657A1 PCT/IB2010/000225 IB2010000225W WO2010089657A1 WO 2010089657 A1 WO2010089657 A1 WO 2010089657A1 IB 2010000225 W IB2010000225 W IB 2010000225W WO 2010089657 A1 WO2010089657 A1 WO 2010089657A1
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- Prior art keywords
- telemetry
- downhole
- scheme
- tool
- data
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Classifications
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- E—FIXED CONSTRUCTIONS
- E21—EARTH OR ROCK DRILLING; MINING
- E21B—EARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
- E21B47/00—Survey of boreholes or wells
- E21B47/12—Means for transmitting measuring-signals or control signals from the well to the surface, or from the surface to the well, e.g. for logging while drilling
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01V—GEOPHYSICS; GRAVITATIONAL MEASUREMENTS; DETECTING MASSES OR OBJECTS; TAGS
- G01V11/00—Prospecting or detecting by methods combining techniques covered by two or more of main groups G01V1/00 - G01V9/00
- G01V11/002—Details, e.g. power supply systems for logging instruments, transmitting or recording data, specially adapted for well logging, also if the prospecting method is irrelevant
Definitions
- the present disclosure relates generally to methods and systems for borehole telemetry in surveys relating to subterranean formations. More specifically, some aspects disclosed herein are directed to methods and systems for transmitting data between a downhole tool and a surface system utilizing a multi-scheme telemetry system for selectively sending information to improve the reliability of data transfer, in particular, in difficult environments such as borehole logging.
- Accurate and rapid collection and distribution of geophysical property data is a key to successful exploration and production of petroleum resources.
- geophysicists Based on data such as electrical and nuclear properties collected in a wellbore, as well as the propagation of sound through a formation, geophysicists make an analysis useful in making many important operational decisions. The analysis includes determination of whether a well is likely to produce hydrocarbons, whether to drill additional wells in the vicinity of an existing well, and whether to abandon a well as being unproductive.
- Measurements of the type described herein are also useful in the fields Of CO 2 sequestration, development of methane hydrate deposits, water reservoir and geothermal monitoring, earthquake monitoring, and monitoring for reservoir delineation, among other applications that are known to persons skilled in the art.
- Geophysicists may also use wellbore data to select where to set casing in a well and to decide on how to perforate a well to stimulate hydrocarbon flow.
- One method of collecting wellbore geophysical properties is by way of well logging.
- a logging tool also often referred to as a sonde
- the logging tool is an electrically powered measurement device that may, for example, collect electrical data, sonic waveforms that are propagated through the surrounding formation, or radioactivity counts. These measurements are usually converted to a digital form and transmitted on the wireline.
- Systems for transmitting data from the borehole logging tool to a data acquisition system over a wireline cable are known as wireline telemetry systems.
- Typical borehole telemetry systems operate under extreme conditions, such as high temperature, low signal to noise ratio (SNR) at the surface and/or downhole receivers due to high distortion caused by long cable length, among other extreme conditions that are known to exist in boreholes of the type described herein.
- SNR signal to noise ratio
- a downliole telemetry cartridge collects data that are sent from one or more measurement tools connected to it and transmits the downhole data to a surface acquisition system through a logging cable.
- several types of noise can be generated, which tend to negatively affect the conveyance of data and the performance of the downhole telemetry system.
- Wireline telemetry system transmits data from the logging tool to the surface computer using a single carrier frequency.
- Wireline cables are primarily designed for mechanical properties. A modern oil well may be drilled to a depth of in excess of 30,000 feet. The cable must be able to sustain the tension generated from the weight of the logging tools and the weight of the lengthy cable itself.
- one method of making measurements underground includes attaching one or more tools to a wireline connected to a surface system. The tools are then lowered into a borehole by the wireline and drawn back to the surface ("logged") through the borehole while taking measurements.
- the wireline is usually an electrical conducting cable with limited data transmission capability.
- permanent monitoring systems are established with permanent sensors that are also generally attached to an electrical cable.
- the disclosure herein may meet at least some of the above-described needs and others.
- the applicants recognized the need for methods and systems for transmitting data between downhole tools and surface systems in a reliable, efficient manner.
- the applicants recognized that techniques were needed that could eliminate, or at least reduce, shortcomings that are inherent in the conventional methods and systems for borehole telemetry, in particular, borehole telemetry systems that utilize modems based on a single, fixed telemetry scheme.
- <extra_id_29>“Downhole tools” and “borehole systems” are used broadly to mean any tool or system used in a subterranean environment including, but not limited to, a logging tool, an imaging tool, an acoustic tool, a permanent monitoring tool, and a combination tool. Aspects disclosed herein include borehole communication systems combined with a plurality of devices attached along a coiled tubing, or a cable line, wire line, slickline, wired drillpipe, or any other suitable downhole deployment means having telemetry capability.
- the present disclosure teaches the use of a multi-scheme telemetry system to derive improved, efficient transmission of data in borehole environments utilizing, for example, wireline cables.
- multi-scheme modem technology could be advantageously adapted and utilized for data telemetry applications in borehole environments, utilizing, for example, existing data telemetry cable systems, to provide data transmission results that are not possible with presently available techniques and systems.
- Methods and systems disclosed herein are directed at borehole telemetry systems comprising a tool configured or designed for deployment in a borehole traversing a subterranean formation.
- the tool comprises a downhole telemetry module; a surface telemetry module; a datalink between the downhole and surface modules configured or designed for transferring data over one or more data communication channels; and a multi-scheme modem configured or designed for transferring data between the downhole and surface modules utilizing a telemetry scheme selected from a predetermined plurality of telemetry schemes based on at least one downhole parameter.
- the datalink transfers data between the surface and downhole modules via a wireline cable.
- the wireline cable may comprise a 7 cable heptacable.
- the wireline cable may provide power to downhole tools.
- the downhole telemetry module may be connected to at least one tool configured for making measurements while in the borehole, and the datalink may be configured or designed to pass data to and from the tool.
- a method for borehole telemetry comprising deploying a tool at at least one depth in a borehole traversing a subterranean formation.
- the tool comprises a downhole telemetry module and data is transferred over a datalink between the downhole telemetry module and a surface telemetry module.
- the datalink may comprise one or more data communication channels.
- the data is transferred by selecting a telemetry scheme from a predetermined plurality of telemetry schemes based on at least one downhole parameter.
- At least one of the downhole telemetry module and the surface telemetry module comprises a multi-scheme modem configured or designed for selecting the at least one telemetry scheme.
- the multi-scheme modem may be configured or designed for automatic and/or manual selection of the at least one telemetry scheme.
- the multi-scheme modem may be configured or designed for selecting one of two telemetry schemes based on channel conditions and/or data rate.
- the at least one telemetry scheme may be selected from a plurality of modulation/demodulation schemes based on at least one downhole parameter.
- the shuttles comprise a plurality of downhole tools and at least one downhole telemetry cartridge, each downhole tool being configured or designed for data communication with the at least one downhole telemetry cartridge through an associated interface package, via a downhole telemetry controller.
- the downhole telemetry controller is operatively connected to a surface system by at least a first and a second telemetry scheme, and the telemetry controller is configured or designed to select between the at least first and second telemetry scheme for data transfer with the surface system.
- the method comprises deploying a tool at at least one depth in a borehole traversing a subterranean formation, the tool comprising a downhole telemetry module; obtaining subterranean formation information with a downhole measurement tool; sending the information to a downhole telemetry controller; selecting one of a plurality of telemetry schemes based on at least one downhole parameter; and transferring data over a datalink between the downhole telemetry controller and a surface telemetry module utilizing the selected telemetry scheme.
- the plurality of telemetry schemes include different modulation and demodulation schemes. In other aspects, the selecting may be done automatically without user intervention. In yet other aspects herein, the plurality of telemetry schemes include different operational bandwidths. In further aspects, the plurality of telemetry schemes include copper, wireless or optical telemetry. In yet further aspects of the present disclosure, the plurality of telemetry schemes include using different conductors pairs in a heptacable. In some embodiments herein, the plurality of telemetry schemes include different tool synchronization schemes. In further embodiments disclosed herein, the plurality of telemetry schemes include different modes of transmitting AC or DC power and/or electrical signals.
- the plurality of telemetry schemes include different operational connections based on compatibility with other downhole measurement tools. In still further embodiments disclosed herein, the plurality of telemetry schemes include different operational connections based on tool bus type and connection between each downhole measurement tool.
- the present disclosure provides a method for improving signal to noise ratio (SNR) in borehole telemetry.
- the method comprising transferring data over at least one datalink between a downhole telemetry module and a surface telemetry module, the datalink comprising a plurality of data telemetry schemes; selecting one of the plurality of telemetry schemes based on at least one downhole parameter; and transferring data over the datalink utilizing the selected telemetry scheme, wherein the selected telemetry scheme reduces noise in the transferred data to increase the signal to noise ratio (SNR) of received data.
- SNR signal to noise ratio
- FIGURE 1 is a schematic representation of a typical well site with a borehole traversing subsurface formations.
- FIGURE 2 illustrates schematically one exemplary borehole telemetry system of the present disclosure for monitoring subterranean formations according to the principles described herein.
- FIGURE 3 is a schematic depiction of one borehole system with a downhole telemetry cartridge according to one embodiment of the present disclosure.
- FIGURE 4 is one exemplary schematic depiction of one configuration for downlink and uplink borehole telemetry utilizing a borehole adaptive telemetry system with a multi-mode modem according to the present disclosure.
- FIGURE 5 is another exemplary schematic depiction of one configuration for a datalink utilizing a two telemetry scheme system in borehole telemetry according to the present disclosure.
- FIGURE 6 is a schematic depiction of a cross-sectional view of a heptacable for data communication according to the principles described herein.
- FIGURE 7 is a flowchart of one possible method for data communication according to the present disclosure.
- one method of making measurements underground comprises connecting one or more tools to a cable connected to a surface system.
- the present disclosure contemplates applications such as wireline, logging-while-drilling, measurement-while-drilling, permanent and/or semi-permanent monitoring, production logging, CO 2 and water reservoir monitoring, earthquake monitoring, among others that are known to those skilled in the art in which data telemetry is required.
- the tools are then lowered into the borehole and then drawn back to the surface (“logged") through the borehole while making measurements.
- the cable often has multiple conductors, for example, a 7 conductor cable known in the art as a heptacable is common.
- the conductors of the cable provide power to the tool from the surface and provide a route for electric signals to be passed between the tool and the surface system.
- These signals are for example, tool control signals which pass from the surface system to the tool, and tool operation signals and data which pass from the tool to the surface system.
- the term “downhole” refers to a subterranean environment, particularly in a wellbore, such as in the field of oilfield exploration and development, management of oil and water reservoirs, sequestration of substances such as CO 2 , and geothermal applications.
- the term “telemetry scheme” refers to any technique or method that is utilized for data transmission between a downhole tool and the surface. In this, a telemetry scheme includes all instrumentation and software that are utilized in linking the downhole components with the surface, for example, hardware, software, and/or hybrid hardware-software devices may be combined as desirable or necessary to provide the desired data link.
- FIG. 1 a schematic depiction of a well site is shown with a diagrammatic representation of a cross section of the subsurface formations traversed by a borehole.
- the subterranean system 100 includes well instrumentation 102 at the surface including all associated instrumentation and monitoring systems. Also shown at the surface is a surface source 104 which is depicted as a vibration vehicle.
- the plurality of lines 106 are intended to represent excitations or seismic vibrations traveling through the subsurface formations producing seismic data that can be sensed by downhole sensor arrays.
- the present systems and methods can be utilized to record seismic data for conducting a seismic survey of the subsurface formations 108.
- aspects herein can also be utilized to control and monitor operations during production by monitoring seismic data from the various subsurface formations, regions, and zones.
- the disclosure herein can be utilized to optimize production of the well.
- the placement of the well bore 110 can be strategically located based on known seismic survey data that may have been previously obtained. Optimal placement of the well bore is desired such that optimal recording of seismic data for the subsurface formations of interest can be obtained.
- a wireline (cable line) 112 a coiled tubing or other conveyance can be spooled to extend down through the wellbore where the plurality of sensor arrays are positioned along the wireline 112.
- the wireline with the seismic sensors attached thereto can be extended as the wellbore is being established.
- the principles described herein can be either permanently deployed for continuous production well monitoring or can be temporarily deployed for performing a subsurface seismic survey and then retracted. Permanent deployments enable continuous monitoring of production well operations. Once the wireline and the plurality of sensor arrays are in position, seismic data can begin to be gathered. If production ceases at the well or for some other reason seismic monitoring is no longer required, the system can be retracted and reutilized elsewhere.
- the exemplary systems presented herein to describe embodiments are for the purpose of illustration and ease of understanding the apparatus and methods. The illustrations shown and described herein should not be construed to be limiting in any way with respect to the scope of the claims.
- FIG. 2 A schematic view of one possible borehole telemetry system is shown in Figure 2.
- the system shown comprises a surface acquisition module or surface modem (DTM) which is typically located at the surface, a cable C, a downhole modem (DTC) at the head of a tool string which includes a number of downhole tools Tl, T2, . . . each containing a respective interface package IPl, IP2, . . . through which they are in communication with the DTC via a toolbus.
- This system is configured to handle data flows in opposite directions, i.e. from the tools, via the respective IPs and FTB, to the DTC and then to the DTM over the cable (“uplink”), and the reverse direction from the DTM to the DTC and tools over the same path ("downlink").
- a principal object of the system is to provide a communication path from the tools to the surface so that data acquired by the tools in use can be processed and analyzed at the surface.
- SNR signal to noise ratio
- FIG 3 is a schematic depiction of a downhole system 200 according to principles of the present disclosure.
- the system 200 includes a surface data acquisition unit 202 in electrical communication with or as a part of a surface telemetry unit 204.
- the surface telemetry unit 204 may or may not be an optical telemetry module.
- the surface telemetry unit 204 includes a multi-scheme modem 206.
- the surface telemetry unit 204 is operatively connected to a cable 208, for example, a copper cable or a single optic fiber.
- the cable interface 208 provides a communication link between the surface telemetry unit 204 and a downhole telemetry cartridge 210.
- the downhole telemetry cartridge 210 is part of the system 200 and includes a downhole multi-scheme modem 212.
- the downhole telemetry cartridge 210 may be operatively connected to a downhole electrical tool bus (not shown).
- the downhole electrical tool bus provides electrical communication link between the downhole telemetry cartridge 210 and one or more downhole tools (depicted generally as downhole data acquisition system 214).
- the downhole tools may each have one or more sensors for measuring certain parameters in a wellbore, and a transceiver for sending and receiving data.
- the downhole telemetry system of Figure 3 may be a hybrid optical-electrical apparatus that may use standard electrical telemetry and sensor technology downhole with the advantage of a high bandwidth fiber optic interface between the downhole components (optical telemetry cartridge, downhole tools) and the surface data acquisition unit.
- An electronic Down Command from the data acquisition unit 202 is sent electrically to the surface telemetry unit 204.
- a downlink modulator of the surface telemetry unit 204 modulates the electronic Down Command, which is transmitted via the interface 208 to the downhole telemetry cartridge 210.
- a downlink demodulator demodulates the signal, and the downhole telemetry cartridge 210 transmits the demodulated electronic signal along the downhole electrical tool bus (not shown) where it is received by the downhole tool(s).
- Uplink Data from the downhole tool(s) is transmitted uphole via the downhole electrical tool bus (not shown) to the downhole telemetry cartridge 210, where it is modulated by an uplink modulator and is transmitted uphole via the interface 208 to the surface telemetry unit 204.
- Sensors of the downhole tools may provide analog signals. Therefore, according to some aspects of the present disclosure, an analog-to-digital converter may be included with each downhole tool or anywhere between the downhole tools and the uplink and downlink modulators/demodulators, as desirable or necessary. Consequently, analog signals from sensors are converted into digital signals, and the digital signals are modulated by the uplink modulator to the surface.
- Figure 4 shows schematically one exemplary telemetry system 300 in accordance with the present disclosure.
- the basic functional parts of the system comprise a surface telemetry module or modem 302, a cable 304 and a downhole telemetry cartridge or modem 306.
- the surface telemetry modem 302 is configured or designed for one or more data communication channels with a first channel having a modulation/demodulation scheme #1 connected to a cable mode #T1, and a second channel having a modulation/demodulation scheme #2 connected to a cable mode #T2 of the logging cable 304.
- the downhole telemetry cartridge or modem 306 is likewise configured.
- the system may be configured for downlink and uplink data transfer. Although three channels are depicted in Figure 4, it is contemplated that additional channels also may be used for the purposes described herein.
- signals pass from the surface telemetry module 302 through the data communication channels, to the downhole telemetry cartridge 306 from which they are passed to the various tools in the tool string 308.
- the telemetry system 300 may include one or more downhole measurement tools from which various types of information may be obtained related to subterranean formations, the borehole, the tool itself, mud properties, among other data that typically are acquired during downhole sensing operations of the type described herein.
- the acquired data may then be transmitted to the downhole telemetry cartridge 306 that may prioritize the information and may apply optimal modulation to deliver the information to the surface acquisition system 302 through a long conveyance, such as the logging cable 304, with minimum error rate.
- an error check and a retransmission scheme may be used to assure loss free data transmission.
- the same mechanism and techniques may also be applied for data transmission from the surface to downhole, i.e., downlink data.
- the surface acquisition system 302 and/or the downhole telemetry cartridge 306 may also choose which telemetry scheme is best suited for transmitting the information between the surface system and the downhole system.
- the telemetry scheme may be selected based on several factors including, but not limited to:
- Noise properties such as frequency characteristics; duration, for example, the noise might vary along with time; amplitude/power; among other properties of noise that adversely affect data transmission by the telemetry system.
- a telemetry scheme may be selected from a predetermined number of telemetry schemes by automatic selection based on predetermined criteria or may be selected by user input.
- a hybrid software/hardware modem may be provided that automatically selects between predetermined telemetry schemes based on certain borehole and/or system parameter conditions being met.
- a user may set the appropriate telemetry scheme based on information derived from the telemetry system during an initial training sequence.
- SNR quality of the telemetry system may be checked to determine downhole data communication parameters based on the transmission of a known signal.
- the performance of the telemetry cartridges or modems may be evaluated based on borehole conditions, and appropriate selection may be made, automatically or manually, based on the results of the evaluation so that data transmission is achieved consistent with the requirements of the job.
- the present disclosure contemplates the design or configuration of multi-scheme modems that are capable of adapting to downhole parameters and/or tool/cable conditions, such as temperature, maintenance, aging, for example, by selecting an appropriate telemetry scheme for the job conditions from among a plurality of telemetry schemes.
- EDTS Enhanced Digital Telemetry System
- DTS Digital Telemetry System
- EDTC Enhanced Digital Telemetry Cartridge
- the default mode telemetry scheme may use T5 for uplink and T7 cable modes.
- An appropriate telemetry scheme is selected based on the following:
- the system recommends selection of the other scheme, or a change in system parameters, for example, a reduction or increase in telemetry bandwidth, an increase or decrease in gain, a decrease in data rate, etc.
- the telemetry scheme may be switched to the one that operates solely on the other cable mode, for example, T5. This decision may be taken at Step 1 above. 4. Run system with selected telemetry scheme.
- Step 3 If the predetermined parameters in Step 3 are encountered during operation, the above process may be repeated.
- an adaptive borehole telemetry system may be designed or configured that has the ability to select the most suitable telemetry scheme so as to adapt with different types of noise sources, borehole conditions, etc., as previously discussed above.
- the telemetry schemes according to the present disclosure may be many and may vary greatly.
- the telemetry schemes may vary in the type of modulation and demodulation scheme, the type of surface acquisition system and/or the type of downhole telemetry cartridge that is used.
- the telemetry schemes may vary by the physical medium a logging cable comprises, such as copper, wireless or optical telemetry, for example.
- Other telemetry schemes may include using full or partial bandwidth, as available with cable, adaptively depending on certain conditions such as SNR property or cable performance.
- telemetry schemes may include cable mode selection by using different conductors pairs in, for example, a heptacable.
- conductor pairs 2,3,5,6, i.e., the so called T5 mode may be selected, or conductor 7 and armor, i.e., the so called T7 mode, may be selected based on downhole parameters.
- Further telemetry schemes, or variations on schemes, contemplated by the present disclosure include, but are not limited to:
- two telemetry schemes may be provided for transmitting and receiving data on a suitable conveyance 404 by sub-dividing the downlink communication, i.e., surface to downhole link, and the uplink communication, i.e., downhole to surface link, into:
- Schemed 2 Time Division Duplex (TDD) using QAM (Quadrature Amplitude Modulation) for uplink transmission and Biphase Mark Modem for downlink transmission on a single cable mode.
- QAM Quadrature Amplitude Modulation
- Scheme #1 may use Discrete Multi Tone (DMT) modulation and demodulation for both of its uplink and downlink.
- DMT Discrete Multi Tone
- any cable mode may be used for uplink and downlink data transmission by dedicating individual frequency bands to each way of transmission.
- Scheme #2 may use QAM modulation and demodulation for its uplink and Biphase Mark modulation and demodulation for its downlink. It is noted that the modulation/demodulation methods, i.e., QAM or Biphase, are given merely as examples, but can vary depending on other communication methods.
- a robust cable mode may be used for data transmission where uplink and downlink transmission is switched in a time division manner. It is contemplated that Scheme #1 will provide a higher data rate.
- the downlink signal of Scheme #1 may be susceptible to noise depending on the particular cable mode that is used and the particular tool string that is connected below the cable.
- the telemetry system 400 may be configured or designed with a multi-scheme modem or controller that can automatically select, or alternatively a user may manually switch the telemetry system to use,
- Figure 7 is a flowchart depicting one possible data telemetry technique utilizing a multi- scheme telemetry system according to the present disclosure.
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Abstract
Description
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Priority Applications (5)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CA2751552A CA2751552A1 (en) | 2009-02-05 | 2010-02-04 | Methods and systems for borehole telemetry |
| GB1115044.8A GB2482614B (en) | 2009-02-05 | 2010-02-04 | Methods and systems for borehole telemetry |
| RU2011136721/28A RU2529595C2 (en) | 2009-02-05 | 2010-02-04 | Methods and systems for downhole telemetry |
| CN2010800155939A CN102369461A (en) | 2009-02-05 | 2010-02-04 | Methods and systems for borehole telemetry |
| NO20111196A NO20111196A1 (en) | 2009-02-05 | 2011-09-01 | Borehole telemetry method and system |
Applications Claiming Priority (4)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US15029109P | 2009-02-05 | 2009-02-05 | |
| US61/150,291 | 2009-02-05 | ||
| US12/699,783 US8362916B2 (en) | 2009-02-05 | 2010-02-03 | Methods and systems for borehole telemetry |
| US12/699,783 | 2010-02-03 |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2010089657A1 true WO2010089657A1 (en) | 2010-08-12 |
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Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/IB2010/000225 Ceased WO2010089657A1 (en) | 2009-02-05 | 2010-02-04 | Methods and systems for borehole telemetry |
Country Status (7)
| Country | Link |
|---|---|
| US (1) | US8362916B2 (en) |
| CN (1) | CN102369461A (en) |
| CA (1) | CA2751552A1 (en) |
| GB (1) | GB2482614B (en) |
| NO (1) | NO20111196A1 (en) |
| RU (1) | RU2529595C2 (en) |
| WO (1) | WO2010089657A1 (en) |
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Also Published As
| Publication number | Publication date |
|---|---|
| RU2011136721A (en) | 2013-03-10 |
| GB2482614B (en) | 2013-10-09 |
| US8362916B2 (en) | 2013-01-29 |
| NO20111196A1 (en) | 2011-09-30 |
| CA2751552A1 (en) | 2010-08-12 |
| US20100194586A1 (en) | 2010-08-05 |
| GB201115044D0 (en) | 2011-10-19 |
| GB2482614A (en) | 2012-02-08 |
| RU2529595C2 (en) | 2014-09-27 |
| CN102369461A (en) | 2012-03-07 |
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