CA2889865C - Downhole determination of drilling state - Google Patents
Downhole determination of drilling state Download PDFInfo
- Publication number
- CA2889865C CA2889865C CA2889865A CA2889865A CA2889865C CA 2889865 C CA2889865 C CA 2889865C CA 2889865 A CA2889865 A CA 2889865A CA 2889865 A CA2889865 A CA 2889865A CA 2889865 C CA2889865 C CA 2889865C
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- bottom hole
- hole assembly
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- drilling
- motion
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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
- E21B47/02—Determining slope or direction
- E21B47/024—Determining slope or direction of devices in the borehole
-
- 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
- E21B44/00—Automatic control systems specially adapted for drilling operations, i.e. self-operating systems which function to carry out or modify a drilling operation without intervention of a human operator, e.g. computer-controlled drilling systems; Systems specially adapted for monitoring a plurality of drilling variables or conditions
- E21B44/005—Below-ground automatic control systems
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- Life Sciences & Earth Sciences (AREA)
- Engineering & Computer Science (AREA)
- Geology (AREA)
- Mining & Mineral Resources (AREA)
- Physics & Mathematics (AREA)
- Environmental & Geological Engineering (AREA)
- Fluid Mechanics (AREA)
- General Life Sciences & Earth Sciences (AREA)
- Geochemistry & Mineralogy (AREA)
- Geophysics (AREA)
- Earth Drilling (AREA)
Abstract
Description
FIELD OF THE INVENTION
[0001] Disclosed embodiments relate generally to methods for downhole processing of drilling measurements and more particularly to a method for downhole processing of drilling measurements to obtain a drilling state such as a dynamic drilling energy of a bottom hole assembly while drilling.
BACKGROUND INFORMATION
[0002] The use of automated drilling methods is becoming increasing common in drilling subterranean wellbores. Such methods may be employed, for example, to control the speed and/or the direction of drilling. Automated methods may also be employed during measurement while drilling (MWD) or logging while drilling (LWD) operations to collect borehole and/or formation related data during drilling. While such methods are commonly used in the drilling industry, their utility may be improved by a downhole determination of the drilling state. For example, MWD and LWD tools may be configured to collect data only during certain drilling states (such as while rotary drilling) or a telemetry tool may be configured to automatically transmit data to the surface in certain drilling states.
However, downhole tools are generally disconnected from the surface and are therefore "unaware" of the drilling state. While the drilling state may be transmitted from the surface to the bottom hole assembly (BHA), such transmission requires sufficient bandwidth and consumes valuable rig time (especially if a transmission is required after each change to the drilling state). A downhole determination of the drilling state may be timelier and therefore allow for more efficient automated control of various downhole tools. As such there is a need in the art for a method of making a downhole determination of the drilling state during a drilling operation.
SUMMARY
The computed energy may be used to improve drilling performance and mitigate dangerous dynamic conditions (such as bit bounce, stick slip, lateral vibrations, and bit whirl).
[0006] This summary is provided to introduce a selection of concepts that are further described below in the detailed description. This summary is not intended to identify key or essential features of the claimed subject matter, nor is it intended to be used as an aid in limiting the scope of the claimed subject matter.
BRIEF DESCRIPTION OF THE DRAWINGS
DETAILED DESCRIPTION
The BHA includes a drill bit 32 and one or more additional downhole tools 60 (e.g., including measurement while drilling tools, logging while drilling tools, steering tools, and the like), and one or more downhole sensors 70 for measuring characteristics of the borehole 40, formation, and/or BHA 50. The BHA 50 may further include substantially any other suitable downhole tools such as a downhole drilling motor, a downhole telemetry system, a reaming tool, and the like. The disclosed embodiments are not limited in these regards.
such as strain gauges for measuring various directional strain components in the BHA.
The disclosed embodiments are not limited to the use of any particular sensor embodiments or configurations.
Drilling mechanics and drilling dynamics measurements may include the axial and/or rotational velocity of the BHA, the axial and/or rotational acceleration of the BHA, and the position of the BHA in the borehole. Drilling mechanics and drilling dynamics measurements may also include strain gauge measurements from which the stress and strain in the BHA may be determined. The measurements may also include measurements of the drilling fluid internal and external to the BHA, for example, including drilling fluid flow rate in the BHA, absolute pressure, and differential pressure.
Such measurements are all known in the art.
For example, the sensor measurements may be processed in combination with logic based on an understanding of the particular drilling operation to obtain the drilling state. For example, the sensor measurements may be processed in combination with the logic to discriminate between two or more of the following drilling states: rotary drilling, slide drilling, in slips, reaming, running in while pumping, running in while rotating, running in, tripping out, back reaming, pulling up while pumping, pulling up while rotating, pulling up, rotating off bottom, pumping off bottom, rotating and pumping off bottom, and stationary. It will be understood that such processing may include transmitting the sensor measurements between various downhole tools and/or downhole processors in the BHA, evaluating various sensor measurements as a function of time, and computing various quantities from the sensor measurements.
For example, a buoyed weight below a downhole tool such as a drilling mechanics module may measure weight and torque as a function of the borehole inclination, with the weight decreasing as inclination increases. The following table (Table I) shows weight and torque as a function of borehole inclination and assumes a mud weight (MW) of 12 ppg (lb/gal).
Bore Inclination (degrees) Weight in Air of Buoyed Weight of Equipment Below Equipment Below DMM (klbf) DMM (klbf)
These calibrations may be refined by using measurements made by the tool in the specific environment in conjunction with information about the downhole drilling state to perform small calibrations to a downhole tool at specific points during the drilling process.
Likewise, when the sensor measurements indicate that a group of measured parameters are above or below corresponding thresholds, the drilling state may be identified (based on the relationship of the multiple measurements to the group of thresholds).
For example, when the collar rotation velocity, the differential pressure, and the axial load all exceed corresponding thresholds, the state may be on bottom drilling. If the collar rotation velocity and differential pressure exceed the corresponding thresholds, but the axial load is below its corresponding threshold, then the state may be set to rotating and pumping off bottom.
Such a hysteresis, for example, may utilize upper and lower thresholds with corresponding state changes only being indicated by a parameter value that exceeds the upper threshold or being below the lower threshold. In the example in the preceding paragraph, the axial load threshold may include upper and lower thresholds.
When the axial load exceeds the upper threshold (and the rotation velocity and the differential pressure exceed corresponding thresholds) then the state may be set to on bottom drilling.
A decrease in the axial load to a value between the lower and upper thresholds does not cause a corresponding state change. However, when the axial load is measured to be less than the lower threshold, the state may be automatically changed to rotating and pumping off bottom.
Likewise, when the measured differential pressure is below the threshold the lower level state may be not pumping. And so on. A combination of lower level states (or a sequence or timed sequence between the lower level states) may be taken to indicate an upper level state (a drilling state). In the example above, the combination of the lower level states rotating, pumping, and high axial load may be taken to indicate the on bottom drilling state.
Alternatively, when the drilling state transitions to rotary drilling or back reaming, one or more logging while drilling tools (or sensors) may be directed to automatically collect logging data. Still further a measurement while drilling tool may be directed to obtain static surveys of the borehole when the drilling state is stationary. Yet further when the drilling state changes to off bottom pumping or off bottom pumping and rotating, a downhole telemetry system may be directed to transmit measurement while drilling data to the surface. The telemetry system may transmit information relating to specific events via on-demand frame technology to provide context specific information. With mud pulse telemetry there is a tradeoff between the transmission of measurements of the drilling process and formation evaluation information. The ability to automatically identify drilling states downhole allows information to be automatically sent uphole when the context is appropriate. Moreover, the determined drilling state may also be transmitted uphole.
A downhole processor processes the sensor measurements at 170 to obtain at least one of (i) an energy of axial motion of the bottom hole assembly, (ii) an energy of rotational motion of the bottom hole assembly, and (iii) an energy of lateral motion of the bottom hole assembly. These energies may further optionally be summed at 180 to obtain a total energy per unit length of the bottom hole assembly. The method may further optionally include automatically changing an operating state of at least one component of the bottom hole assembly at 190 in response one or more of the computed energies. It will be understood that in detecting severe events (such as the dynamic drilling energy of the drill string) it may be advantageous to make substantially instantaneous measurements (using rapidly acquired sensor data).
Each of the modes of motion may be characterized by or expressed as an energy per unit length of the BHA. For example, the rotational motion may be expressed as an energy of rotational motion (Erotationai), the axial motion may be expressed as an energy of axial motion (Eaxiai), and the lateral motion may be expressed as an energy of lateral motion (Elateral) or first and second energies of lateral motion. Each of the modes of motion may be determined relative to a static frame of reference. The total energy Etotal per unit length of the BHA may be taken, for example, to be the sum of the energies per unit length associated with each mode of motion. In other words, Etotal may be taken to be the sum of E
rotational, Eaxiall and Elateral= The energy per unit length associated with each mode of motion may be expressed generally as follows:
E = -1 MV2 + ¨F2 Equation 1
Accelerometer measurements may be used, for example, to obtain the instantaneous and/or average values of the axial, lateral, and rotational velocities while magnetometers may be used to measure the rotational velocity. The accelerometers may be deployed in the BHA
so as to measure the acceleration in one or more directions. The accelerometers may measure instantaneous and/or averaged values of rotational acceleration, lateral acceleration, and/or axial acceleration. For example, the accelerometers may be deployed within or about the circumference of the BHA such that the measured accelerations may include rotational, axial, lateral acceleration components, and/or a combination thereof For example, one or more accelerometers oriented in the axial direction may be used to obtain an axial velocity via integrating the axial accelerometer measurements.
Likewise, one or more accelerometers oriented in a lateral direction may be used to obtain a lateral velocity via integrating the lateral accelerometer measurements.
Similarly one or more accelerometers oriented tangentially about the circumference of the BHA may be used to obtain a rotational velocity via integrating the tangential accelerometer measurements. It will be understood that the disclosed embodiments are not limited to the use of any particular accelerometer arrangement. Other methods of using accelerometers to obtain BHA accelerations are also known in the art.
Such methods are known in the art.
to obtain measurements of BHA strain. The output from the strain gauges may be processed to further obtain one or more parameters such as stress, torque, strain, bending moment, and the like. For example, various strain gauge measurements may be processed to obtain axial, lateral and torsional (rotational) strain in the BHA via multiplying the measured strain values by known elastic moduli of the BHA materials of construction.
may represent a known axial stiffness per unit length of the BHA. The axial velocity V is not generally measured directly, but is computed from one or more accelerometer measurements. An axial accelerometer provides an axial acceleration measurement that may be used to calculate the axial velocity V, for example, through time-integration.
Variations in the measured acceleration may be observed and may indicate variations in the axial velocity.
acceleration and gravitational acceleration components. Further, the gravitational acceleration component changes with changing borehole inclination. The gravitational acceleration component may be removed from the accelerometer measurements using techniques known to those of ordinary skill in the art. In some instances (e.g., in a horizontal wellbore), the gravitational acceleration component may be negligible as compared to the axial acceleration of the BHA.
rotational using Equation 1, M may represent a known rotational moment of inertia per unit length of the BHA, V may represent the measured angular rotation speed (rotational velocity) of the BHA, F may represent the measured torque, and S may represent a known rotational stiffness of the per unit length of the BHA. The energy of rotational motion may be calculated using the known values of M and S and the measured (or computed) values of V and F. The rotational velocity V of the BHA may be obtained from accelerometer and/or magnetometer measurements, for example, as described above. The torque F may be computed from tangential strain gauges as is also described above.
may represent the measured lateral velocity of the BHA, F may represent the measured bending moment of the BHA, and S may represent the known rotational stiffness.
The energy of lateral motion Elateral may be the lateral energy in first and/or second orthogonal directions. In a horizontal wellbore the first and second directions may be vertical and horizontal, for example. The first and second energies of lateral motion may of course be determined independently of each other using distinct velocity and bending moment measurements.
Offset mounted accelerometers rotate with the drilling tool to provide an offset motion of acceleration. The offset motion of acceleration may include acceleration from a combination of sources (e.g., including tool rotation and rotational acceleration). The offset motion of acceleration may also be used to calculate or estimate the center of motion acceleration. For example, to calculate or estimate the center of motion acceleration, the centripetal and rotational acceleration components may be removed or corrected to isolate the lateral acceleration relative to a rotating frame of reference, or the center of motion acceleration.
relative to the static frame (e.g., Earth's frame of reference). The angle of the BHA
may also be determined by time-integrating gyroscopic measurements. While variations in the angle determined through time-integrated gyroscopic measurements may be observed, the variations may be negligible with respect to the energy of lateral motion E
lateral.
+ ¨2S Equation
Substantially instantaneous total energy values may also be acquired.
controller may also be configured to automatically mitigate the dynamic conditions without intervention from the surface.
stalled), or whether the drill bit has broken free from the BHA. In such a case, the energy of lateral motion and the energy of axial motion tend to drop significantly when the motor has stalled. Further indication of a stalled condition may be shown by a concurrent reduction in the rotation speed of the BHA. By processing the computed energies and various other sensor measurements, a downhole controller may be able to diagnose various downhole drilling conditions (such as the above mentioned stalled motor and dangerous dynamics conditions and a normal drilling condition). A telemetry system may be configured to automatically transmit the drilling condition to the surface in response to the computed energies.
Claims (20)
(a) acquiring one or more downhole sensor measurements;
(b) processing the sensor measurements acquired in (a) using a downhole processor to determine a drilling state of the bottom hole assembly; and (c) automatically changing an operating mode of at least one component in the bottom hole assembly in response to the drilling state determined in (b).
(i) processing a plurality of the sensor measurements to obtain a corresponding plurality of lower level states; and (ii) processing the lower level states to obtain the drilling state of the bottom hole assembly.
comprises a dynamic drilling energy per unit length of the BHA.
(d) transmitting the drilling state obtained in (b) to a surface location.
(a) acquiring at least one sensor measurement from a corresponding sensor deployed in the bottom hole assembly; and (b) causing a downhole processor to process the sensor measurement to obtain at least one of (i) an energy of axial motion of the bottom hole assembly, (ii) an energy of rotational motion of the bottom hole assembly, and (iii) an energy of lateral motion of the bottom hole assembly.
(c) causing the downhole processor to process the energy of axial motion, the energy of rotational motion, and the energy of lateral motion to obtain a total energy per unit length of the bottom hole assembly.
(d) automatically changing an operating state of at least one component of the bottom hole assembly in response to the total energy per unit length of the bottom hole assembly obtained in (c).
(i) causing the downhole processor to process the sensor measurements to obtain an axial velocity of the bottom hole assembly and an axial stress in the bottom hole assembly;
(ii) causing the downhole processor to process the axial velocity of the bottom hole assembly and the axial stress in the bottom hole assembly in combination with a mass per unit length and an axial stiffness of the bottom hole assembly to obtain the energy of axial motion of the bottom hole assembly.
(i) causing the downhole processor to process the sensor measurements to obtain an angular rotational velocity of the bottom hole assembly and a torque on the bottom hole assembly;
(ii) causing the downhole processor to process the angular rotational velocity of the bottom hole assembly and the torque on the bottom hole assembly in combination with a rotational moment of inertia per unit length and a rotational stiffness of the bottom hole assembly to obtain the energy of rotational motion of the bottom hole assembly.
(i) causing the downhole processor to process the sensor measurements to obtain a lateral velocity of the bottom hole assembly and a bending moment of the bottom hole assembly;
(ii) causing the downhole processor to process the lateral velocity of the bottom hole assembly and the bending moment of the bottom hole assembly in combination with a bending moment of inertia per unit length and a bending stiffness per unit length of the bottom hole assembly to obtain the energy of rotational motion of the bottom hole assembly.
(c) automatically changing an operating state of at least one component of the bottom hole assembly in response to the at least one of (i) an energy of axial motion of the bottom hole assembly, (ii) an energy of rotational motion of the bottom hole assembly, and (iii) an energy of lateral motion of the bottom hole assembly obtained in (b).
Applications Claiming Priority (7)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US201261723740P | 2012-11-07 | 2012-11-07 | |
| US61/723,740 | 2012-11-07 | ||
| US201261724681P | 2012-11-09 | 2012-11-09 | |
| US61/724,681 | 2012-11-09 | ||
| US14/072,677 US9631477B2 (en) | 2012-11-07 | 2013-11-05 | Downhole determination of drilling state |
| US14/072,677 | 2013-11-05 | ||
| PCT/US2013/068822 WO2014074652A1 (en) | 2012-11-07 | 2013-11-06 | Downhole determination of drilling state |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| CA2889865A1 CA2889865A1 (en) | 2014-05-15 |
| CA2889865C true CA2889865C (en) | 2020-08-18 |
Family
ID=50623134
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| CA2889865A Active CA2889865C (en) | 2012-11-07 | 2013-11-06 | Downhole determination of drilling state |
Country Status (4)
| Country | Link |
|---|---|
| US (1) | US9631477B2 (en) |
| EP (1) | EP2917476B1 (en) |
| CA (1) | CA2889865C (en) |
| WO (1) | WO2014074652A1 (en) |
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| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US11085283B2 (en) | 2011-12-22 | 2021-08-10 | Motive Drilling Technologies, Inc. | System and method for surface steerable drilling using tactical tracking |
| US9297205B2 (en) | 2011-12-22 | 2016-03-29 | Hunt Advanced Drilling Technologies, LLC | System and method for controlling a drilling path based on drift estimates |
| US8596385B2 (en) | 2011-12-22 | 2013-12-03 | Hunt Advanced Drilling Technologies, L.L.C. | System and method for determining incremental progression between survey points while drilling |
| US8210283B1 (en) * | 2011-12-22 | 2012-07-03 | Hunt Energy Enterprises, L.L.C. | System and method for surface steerable drilling |
| US9140112B2 (en) * | 2012-11-02 | 2015-09-22 | Saudi Arabian Oil Company | Systems and methods for expert systems for well completion using Bayesian decision models (BDNs), drilling fluids types, and well types |
| BR112015008318A2 (en) | 2013-09-23 | 2017-07-04 | Farmobile Llc | relay device, and server and agriculture data exchange systems |
| US9494031B2 (en) * | 2014-05-11 | 2016-11-15 | Schlumberger Technology Corporation | Data transmission during drilling |
| US9428961B2 (en) | 2014-06-25 | 2016-08-30 | Motive Drilling Technologies, Inc. | Surface steerable drilling system for use with rotary steerable system |
| US11106185B2 (en) | 2014-06-25 | 2021-08-31 | Motive Drilling Technologies, Inc. | System and method for surface steerable drilling to provide formation mechanical analysis |
| US11713671B2 (en) | 2014-10-28 | 2023-08-01 | Halliburton Energy Services, Inc. | Downhole state-machine-based monitoring of vibration |
| US10533408B2 (en) * | 2015-03-13 | 2020-01-14 | M-I L.L.C. | Optimization of drilling assembly rate of penetration |
| US11261667B2 (en) * | 2015-03-24 | 2022-03-01 | Baker Hughes, A Ge Company, Llc | Self-adjusting directional drilling apparatus and methods for drilling directional wells |
| WO2016209230A1 (en) * | 2015-06-25 | 2016-12-29 | Tde Petroleum Data Solutions, Inc. | Method for standardized evaluation of drilling unit performance |
| US10683744B2 (en) | 2015-09-01 | 2020-06-16 | Pason Systems Corp. | Method and system for detecting at least one of an influx event and a loss event during well drilling |
| SE542210C2 (en) * | 2015-10-09 | 2020-03-10 | Lkab Wassara Ab | A method and a system för optimising energy usage at a drilling arrangement. |
| US10995604B2 (en) | 2015-12-01 | 2021-05-04 | Schlumberger Technology Corporation | Closed loop control of drilling curvature |
| WO2018000211A1 (en) | 2016-06-29 | 2018-01-04 | Schlumberger Technology Corporation | Drilling energy calculation based on transient dynamics simulation and its application to drilling optimization |
| US11933158B2 (en) | 2016-09-02 | 2024-03-19 | Motive Drilling Technologies, Inc. | System and method for mag ranging drilling control |
| CN108955868B (en) * | 2017-05-22 | 2020-09-08 | 中国石油化工股份有限公司 | Underground drilling state identification method |
| RU2760157C2 (en) | 2017-06-21 | 2021-11-22 | Шлюмбергер Текнолоджи Б.В. | Data transmission from well and synchronization on surface |
| EP3721055B1 (en) * | 2017-12-04 | 2023-04-26 | HRL Laboratories, LLC | Continuous trajectory calculation for directional drilling |
| WO2019118188A1 (en) * | 2017-12-14 | 2019-06-20 | Halliburton Energy Services, Inc. | Accelerometer systems and methods for rotating downhole tools |
| US10851640B2 (en) | 2018-03-29 | 2020-12-01 | Nabors Drilling Technologies Usa, Inc. | Nonstop transition from rotary drilling to slide drilling |
| US11519255B2 (en) * | 2018-10-16 | 2022-12-06 | Halliburton Energy Services, Inc. | Downhole tool dynamic and motion measurement with multiple ultrasound transducer |
| US11773710B2 (en) * | 2018-11-16 | 2023-10-03 | Schlumberger Technology Corporation | Systems and methods to determine rotational oscillation of a drill string |
| CN111379550B (en) * | 2018-12-11 | 2023-07-18 | 中国石油化工股份有限公司 | System for be used for monitoring dynamic parameter in pit |
Family Cites Families (8)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US6206108B1 (en) | 1995-01-12 | 2001-03-27 | Baker Hughes Incorporated | Drilling system with integrated bottom hole assembly |
| US6220087B1 (en) | 1999-03-04 | 2001-04-24 | Schlumberger Technology Corporation | Method for determining equivalent static mud density during a connection using downhole pressure measurements |
| EA009115B1 (en) | 2002-04-19 | 2007-10-26 | Марк У. Хатчинсон | A method for determining a drilling malfunction |
| US7114578B2 (en) | 2002-04-19 | 2006-10-03 | Hutchinson Mark W | Method and apparatus for determining drill string movement mode |
| US6892812B2 (en) | 2002-05-21 | 2005-05-17 | Noble Drilling Services Inc. | Automated method and system for determining the state of well operations and performing process evaluation |
| US7128167B2 (en) * | 2002-12-27 | 2006-10-31 | Schlumberger Technology Corporation | System and method for rig state detection |
| US7921937B2 (en) | 2007-01-08 | 2011-04-12 | Baker Hughes Incorporated | Drilling components and systems to dynamically control drilling dysfunctions and methods of drilling a well with same |
| WO2010059295A1 (en) | 2008-11-21 | 2010-05-27 | Exxonmobil Upstream Research Company | Methods and systems for modeling, designing, and conducting drilling operations that consider vibrations |
-
2013
- 2013-11-05 US US14/072,677 patent/US9631477B2/en active Active
- 2013-11-06 WO PCT/US2013/068822 patent/WO2014074652A1/en not_active Ceased
- 2013-11-06 EP EP13852677.7A patent/EP2917476B1/en active Active
- 2013-11-06 CA CA2889865A patent/CA2889865C/en active Active
Also Published As
| Publication number | Publication date |
|---|---|
| WO2014074652A1 (en) | 2014-05-15 |
| CA2889865A1 (en) | 2014-05-15 |
| EP2917476A4 (en) | 2016-08-17 |
| US9631477B2 (en) | 2017-04-25 |
| EP2917476B1 (en) | 2023-06-14 |
| US20140129148A1 (en) | 2014-05-08 |
| EP2917476A1 (en) | 2015-09-16 |
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