WO2013096571A1 - System and method for measuring formation properties - Google Patents
System and method for measuring formation properties Download PDFInfo
- Publication number
- WO2013096571A1 WO2013096571A1 PCT/US2012/070852 US2012070852W WO2013096571A1 WO 2013096571 A1 WO2013096571 A1 WO 2013096571A1 US 2012070852 W US2012070852 W US 2012070852W WO 2013096571 A1 WO2013096571 A1 WO 2013096571A1
- Authority
- WO
- WIPO (PCT)
- Prior art keywords
- pressure
- flowline
- temperature
- fluid
- buildup
- Prior art date
- Legal status (The legal status 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 status listed.)
- Ceased
Links
Classifications
-
- 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
- E21B47/06—Measuring temperature or pressure
-
- 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
- E21B47/06—Measuring temperature or pressure
- E21B47/07—Temperature
-
- 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
- E21B49/00—Testing the nature of borehole walls; Formation testing; Methods or apparatus for obtaining samples of soil or well fluids, specially adapted to earth drilling or wells
- E21B49/08—Obtaining fluid samples or testing fluids, in boreholes or wells
Definitions
- the disclosure pertains generally to the field of oil and gas exploration. More particularly, the disclosure relates to systems and methods for determining at least one property of a subsurface formation penetrated by a wellbore using a formation tester.
- a borehole is typically drilled from the earth surface to the desired subsurface formation and tests are performed on the formation to determine whether the formation is likely to produce hydrocarbons of commercial value. These preliminary tests are conducted using formation testing tools, often referred to as formation testers.
- formation testers are lowered into a wellbore by a wireline cable, tubing, drill string, or the like, and may be used to determine various formation characteristics which assist in determining the quality, quantity, and conditions of the hydrocarbons or other fluids located therein.
- Other formation testers may form part of a drilling tool, such as a drill string, for the measurement of formation parameters during the drilling process.
- Formation testers are typically used to measure downhole parameters, such as wellbore pressures, formation pressures, and formation mobilities.
- the formation properties determined during a formation test are important factors in determining the commercial value of a well and the manner in which hydrocarbons may be recovered from the well.
- a method can include creating a pressure reduction in a flowline in a formation tester, the flowline in fluid communication with a fluid having a pressure, b) measuring temperature change within the flowline as the fluid is drawn into the flowline, c) normalizing temperature change as measured in the flowline to temperature exterior to the formation tester ( ⁇ ( ⁇ )), d) measuring pressure change in the flowline ( ⁇ ) as the fluid is drawn into the flowline, and e) determining whether a curve resulting from the equation ⁇ / ⁇ ( ⁇ ) over a period of time indicates that the pressure reduction reached a flowline pressure that is at or below the pressure of the fluid.
- the step of determining is done at substantially the same time as the measuring steps.
- the determining step comprises calculating a time integral of the curve, e.g., from the formula
- P flowline pressure
- ⁇ flowline temperature normalized for temperature exterior to the flowline
- v a value defining a smoothing window over which individual pressure and temperature measurements are smoothed
- n the number indices i within the selected period of time
- a is an arbitrary scaling factor.
- the period of time is less than 2 minutes, from about 30 seconds to about 100 seconds, or about 40 seconds.
- the method can further include repeating steps a through e if the curve indicates that the pressure reduction did not reach a flowline pressure that is at or below the pressure of the fluid.
- a system can include: a) a formation tester having a flowline, the flowline in fluid communication with a fluid having a pressure and one or more sensor, the one or more sensor operable to measure temperature exterior to the formation tester and measure pressure and temperature within the flowline, b) a processor that receives temperature and pressure data from the one or more sensor and calculates a curve resulting from the equation ⁇ / ⁇ ( ⁇ ), where ⁇ is pressure change in the flowline as the fluid is drawn into the flowline by the creation of a first pressure reduction within the flowline, and where ⁇ ( ⁇ ) is temperature change in the flowline normalized for temperature exterior to the flowline.
- the processor further calculates a time integral of the curve, e.g., from the formula
- P flowline pressure
- AT flowline temperature normalized for temperature exterior to the flowline
- v a value defining a smoothing window over which individual pressure and temperature measurements are smoothed
- n the number indices i within the selected period of time
- a is an arbitrary scaling factor.
- the processor further indicates whether the first pressure reduction reached a flowline pressure that is at or below the pressure of the fluid.
- the processor further initiates creation of a second pressure reduction in the flowline if the curve from step c indicates that the first pressure reduction did not reach a flowline pressure that is at or below the pressure of the fluid.
- Figure 1 is a schematic diagram of a wireline formation tester in accordance with an embodiment of the disclosure.
- Figure 2 is a cross sectional view of a modular wireline formation tester in accordance with an embodiment of the disclosure.
- Figure 3 is a graphical representation of an example of flowline pressure readings over time.
- Figure 4 is a graphical representation of example flowline pressure readings from a series of drawdowns (A, C, E, G) and buildups (B, D, F, H).
- Figure 5A is a graphical representation of an example of the relationship between pressure and temperature over time in a flowline following a drawdown that reaches a pressure at or below that of a fluid in a formation in which a well formation tester is disposed.
- Figure 5B is a graphical representation of an example of the relationship between pressure and temperature over time in a flowline following a drawdown that does not reach a pressure that is at or below that of a fluid in a formation in which a well formation tester is disposed.
- Figure 6A is a graphical representation of an example of a curve plotting change in buildup pressure over change in temperature over time following a drawdown that reaches a pressure at or below that of a fluid in a formation in which a well formation tester is disposed.
- Figure 6B is a graphical representation of an example of a slope of a curve plotting the change in buildup pressure over change in temperature over time following a drawdown that does not reach a pressure at or below that of fluid in a formation in which a well formation tester is disposed.
- Figure 7 is a flow chart illustrating a method in accordance with an
- Figure 8A is a graphical representation of an example of flowline pressure and temperature readings from a series of paired drawdowns and buildups (1, 2, 3).
- Figure 8B is a graphical representation of a time integral curve calculated from the pressure and temperature readings of buildup 1 of Fig. 7A.
- Figure 8C is a graphical representation of a time integral curve calculated from the pressure and temperature readings of buildup 2 of Fig. 7A.
- Figure 8D is a graphical representation of a time integral curve calculated from the pressure and temperature readings of buildup 3 of Fig. 7A.
- Figure 9A is a graphical representation of an example of flowline pressure and temperature readings from a series of paired drawdowns and buildups (1, 2, 3).
- Figure 9B is a graphical representation of a time integral curve calculated from the pressure and temperature readings of buildup 1 of Fig. 8 A.
- Figure 9C is a graphical representation of a time integral curve calculated from the pressure and temperature readings of buildup 2 of Fig. 8 A.
- Figure 9D is a graphical representation of a time integral curve calculated from the pressure and temperature readings of buildup 3 of Fig. 8 A.
- Figure 10A is a graphical representation of an example of flowline pressure and temperature readings from a series of paired drawdowns and buildups (1, 2, 3, 4).
- Figure 10B is a graphical representation of a time integral curve calculated from the pressure and temperature readings of buildup 1 of Fig. 9A.
- Figure IOC is a graphical representation of a time integral curve calculated from the pressure and temperature readings of buildup 2 of Fig. 9A.
- Figure 10D is a graphical representation of a time integral curve calculated from the pressure and temperature readings of buildup 3 of Fig. 9A.
- Figure 10E is a graphical representation of a time integral curve calculated from the pressure and temperature readings of buildup 4 of Fig. 9A.
- Figure 11 A is a graphical representation of an example of flowline pressure and temperature readings from a series of paired drawdowns and buildups (1, 2, 3).
- Figure 1 IB is a graphical representation of a time integral curve calculated from the pressure and temperature readings of buildup 1 of Fig. 10A.
- Figure 11 C is a graphical representation of a time integral curve calculated from the pressure and temperature readings of buildup 2 of Fig. 10A.
- Figure 1 ID is a graphical representation of a time integral curve calculated from the pressure and temperature readings of buildup 3 of Fig. 10A.
- Figure 12A is a graphical representation of an example of flowline pressure and temperature readings from a series of paired drawdowns and buildups (1, 2).
- Figure 12B is a graphical representation of a time integral curve calculated from the pressure and temperature readings of buildup 1 of Fig. 11 A.
- Figure 12C is a graphical representation of a time integral curve calculated from the pressure and temperature readings of buildup 2 of Fig. 11 A.
- Figure 13 is a schematic block diagram depicting a computing apparatus in accordance with an embodiment of the disclosure
- Figure 1 illustrates an embodiment of a wireline formation testing apparatus, system, and methodology.
- the wireline formation testing system of Figure 1 can be onshore or offshore for, for example, exploring oil, natural gas, and other resources that can be used, refined, and otherwise processed for fuel, raw materials and other purposes.
- a borehole 3 can be formed in subsurface formations 5, such as rock formations, by rotary drilling using any suitable technique.
- a wireline tester 100 can be lowered using a wireline cable 6 into the open borehole 3 lined with mudcake 4 deposited onto the wall of the wellbore during drilling operations.
- a surface system of the wireline formation testing system of Figure 1 can include a platform and derrick assembly 2 positioned over the borehole 3.
- FIG. 2 illustrates an embodiment of a wireline tester 100 suitable for use in the wireline formation testing system of Figure 1.
- the wireline tester 100 can include a probe 112 in fluid communication with the exterior of wireline tester 100 and a flowline 119 on the interior of the wireline tester 100.
- the wireline tester 100 can further include a piston 118 within a pretest chamber 114 in fluid communication with flowline 119 and a pressure sensor or gauge 120 (e.g., a sapphire or quartz pressure gauge) that measures pressure within flowline 119.
- wireline tester 100 can include a temperature sensor or gauge (not shown) that measures temperature within flowline 119.
- wireline tester 100 can include a temperature sensor or gauge (not shown) that measures temperature of a fluid exterior to the tester 100 (e.g., a fluid in borehole 3).
- a temperature sensor or gauge (not shown) that measures temperature of a fluid exterior to the tester 100 (e.g., a fluid in borehole 3).
- Each temperature or pressure sensor can have any appropriate sampling rate, which may or may not be adjustable. In some embodiments, the temperature and pressure sampling rates are the same.
- wireline tester 100 Once wireline tester 100 is lowered to the desired position in borehole 3, fluid in the borehole can be allowed to enter the flowline 119, for example, by opening an equalization valve (not shown).
- An example of pressure measured in flowline 119 by pressure sensor 120 at this point is graphically depicted as line 103 in Figure 3.
- the wireline tester 100 can be anchored in place and probe 112 can be positioned in fluid communication with a fluid in formation 5 using, for example,
- hydraulically-actuated pistons, and the interior of the wireline tester 100 can be isolated from the fluid in the borehole by closing the equalization valve.
- An example of a pressure measurement at the time of establishment of fluid communication of probe 112 with a fluid in formation 5 is graphically illustrated at 105 in Figure 3.
- a pressure reduction (also termed herein as a "drawdown phase") can then be created in flowline 119, for example, by retracting piston 118.
- An example of a pressure reduction in flowline 119 of a drawdown phase is graphically depicted as line 107 in Figure 3.
- a fluid in fluid communication with flowline 119 e.g., a fluid from formation 5 can then be drawn into flowline 119.
- temperature inside flowline 119 can be measured during all or part of one or more drawdown and/or buildup phases.
- temperature exterior to wireline tester 100 e.g., temperature of a fluid in borehole 3
- drawdown and/or buildup phase can be measured during one or more drawdown and/or buildup phase.
- a drawdown phase if a drawdown phase is performed that reaches a pressure at or below that of a fluid in formation 5, pressure in flowline 119 can equilibrate to a final pressure that is approximately the same as the pressure of a fluid in formation 5, as graphically illustrated as line 115 in Figure 3.
- a buildup phase that can be used to approximate a pressure of a fluid in a formation 5 is termed "genuine buildup.”
- a subsequent buildup phase pressure increase can be due to temperature and pressure equalization following adiabatic cooling within flowline 119 when a pressure reduction is created by piston 118.
- a pressure measured in flowline 119 is not representative of a pressure of a fluid in formation 5, and is termed herein a "pseudo buildup.”
- the steps of creating a pressure reduction and measuring pressure in flowline 119 can be repeated until a drawdown phase reaches a pressure at or below that of a fluid in formation 5, such that a subsequent buildup phase can be used to approximate a pressure of a fluid in formation 5.
- Figure 4 graphically illustrates an example of pressure measurements over multiple cycles of drawdown phases A, C, E, G and buildup phases B, D, F, H performed over time.
- cycles of drawdown and buildup phases can be repeated until two or more repeatable buildup phases are achieved, where each of the repeatable buildup phases reaches approximately the same pressure (e.g., within the margin of pressure gauge or sensor sensitivity), as illustrated with buildup phases F and H in Figure 4.
- Drawdown phases E and G then, can be identified as having reached a pressure at or below that of a fluid in formation 5, and pressure of formation 5 can be determined as approximately equivalent to the final pressure in flowline 119 during one or more of the repeatable buildup phases.
- a drawdown phase can be predicted as having reached a pressure that is at or below the pressure of a fluid in a formation 5 prior to performing another drawdown phase by predicting whether a subsequent buildup phase is a genuine buildup (i.e., the drawdown phase had reached a pressure that is at or below that of a fluid in formation 5) or a pseudo buildup (i.e., the drawdown phase had not reached a pressure that is at or below that of a fluid in formation 5).
- a method 1000 for predicting whether a drawdown phase has reached a pressure that is at or below the pressure of a fluid in fluid communication with a flowline can include, after creating a pressure reduction in the flowline 1050, measuring temperature within the flowline as fluid is drawn into the flowline 1052, measuring pressure within the flowline as fluid is drawn into the flowline 1056, and determining whether a curve based on the ratio of pressure change to temperature change indicates that the pressure reduction reached a pressure that is at or below that of a fluid in fluid communication with the flowline 1058.
- Pressure increase in flowline 1 19 over a period of time in a genuine buildup can be observed to diverge from temperature increase in flowline 1 19 over the same period of time, as illustrated in the example shown in Figure 5 A.
- pressure increase in flowline 1 19 over a period of time in a pseudo buildup can be observed to trend closely with temperature increase in flowline 1 19 over the same period of time.
- a curve can be calculated from the ratio of change in pressure ( ⁇ ) over change in temperature (57) in flowline 1 19 over a period of time.
- a buildup phase can be predicted as more likely to be genuine as the curvature resulting from the equation ⁇ / ⁇ (Eq. 1) becomes greater.
- a buildup phase can be predicted as more likely to be a pseudo buildup as the curvature of a curve resulting from Equation 1 becomes smaller.
- temperature in flowline 1 19 can be normalized 1054 to temperature of fluid exterior to formation tester 100 in order to take into account temperature changes that are not related to adiabatic cooling (e.g., a change in temperature of the borehole 3).
- a normalized temperature ⁇ AT) in flowline 1 19 can be calculated by subtracting temperature measured in fluid exterior (e.g., fluid in borehole 3) to the formation tester 100 from temperature measured in the flowline 1 19 at each measured time point.
- a curve resulting from the equation ⁇ / ⁇ ( ⁇ ) (Eq. 2) over a period of time can then be calculated.
- a buildup phase can be predicted as more likely to be genuine as the curvature resulting from Equation 2 becomes greater.
- a buildup phase can be predicted as more likely to be a pseudo buildup as the curvature of a curve resulting from Equation 2 becomes smaller.
- temperature normalization can result in zero or negative values when differences between temperature within flowline 1 19 and temperature of fluid outside of the formation tester 100 are within sensor resolution.
- normalized temperatures having zero or negative values can be avoided by using various methods of data conditioning. For example, normalized temperatures having zero or negative values can be avoided by linearly interpolating values that are within sensor resolution.
- n is the number indices i following is the linearly interpolated temperature.
- pressure values within sensor resolution can be linearly interpolated using methods similar to those used to linearly interpolate temperature.
- a time integral of a curve calculated from Equation 1 or
- Equation 2 can be used to predict whether a buildup is a genuine buildup or a pseudo buildup.
- Equation 4 a time integral calculated using Equation 4:
- Variable i in Equation 4 is a whole number representing the index of the current pressure and temperature measurements are taken.
- Variable v in Equation 4 is an value that defines a smoothing window over which individual pressure and temperature measurements are smoothed. Any appropriate value can be used for v. For example, if individual pressure and temperature measurements are to be smoothed over a window of 5 measurements before and 5 measurements after each individual measurement, then the value of v would be 5. In some embodiments, a value for v can be chosen based on a desired smoothing effect that can be provided by the smoothing window defined by v. In some embodiments, v can have a value of at least 3 (e.g., 3, 4, 5, 6,
- each individual measurement can be smoothed over a window of 4 measurements before and 3 measurements after the individual measurement.
- variable v can have multiple values as appropriate to define the desired window.
- Variable a in Equation 4 is an arbitrary scaling factor. Any desired value for a can be chosen to provide a convenient graphical representation of values calculated from Equation 4. An appropriate value for a can depend on, for example, a period of time over which temperature and pressure are measured, a pressure or temperature sampling rate, a sensor resolution, or a desired range of values calculated from Equation 4.
- the period of time over which a time integral of a curve is calculated can be any appropriate period of time.
- an appropriate period of time is less than 2 minutes.
- an appropriate period of time is from about 20 seconds to about 100 seconds (e.g., from about 30 seconds to about 100 seconds, from about 30 to about 60 seconds, from about 40 to about 60 seconds, from about 45 to about 80 seconds, 35 seconds, 40 seconds, 50 seconds, 60 seconds, 75 seconds, 90 seconds, or the like).
- the period of time over which a time integral of a curve is calculated can be adjusted to account for various conditions, such as mobility of a fluid for which pressure will be estimated, pressure and/or temperature gauge sensitivity, the volume of the flowline, and the like.
- a threshold value calculated from Equation 4 at a selected time point can be identified as being predictive of whether a drawdown phase has reached a pressure that is at or below that of a fluid in communication with flowline 119.
- a value calculated at 40 seconds from Equation 4 that is greater than 10 during a 40 second period of time indicates that a buildup phase is a genuine buildup and/or that the previous drawdown phase had reached a pressure that is at or below that of a fluid in communication with flowline 119.
- a value calculated at 40 seconds from Equation 4 that is less than 10 indicates that the buildup phase is a pseudo buildup and/or that the previous drawdown phase had not reached a pressure that is at or below that of a fluid in communication with flowline 119.
- a buildup that has been calculated to be a pseudo buildup can indicate that a fluid in communication with flowline 119 is not flowing into flowline 119.
- Figures 8 A, 9 A, 10A, 11A, and 12A illustrate examples of time integral curves from various drawdown and buildup sets.
- Each of the curves from 8B, 9B, 10B, IOC, 1 IB, l lC, and 112B indicate a pseudo buildup.
- Figures 8C, 8D, 9C, 9D, 10D, 10E, 1 ID, and 12C are graphical representations of
- a computing apparatus 2000 can be used to calculate whether a drawdown phase had reached a pressure that is at or below that of a fluid exterior to formation tester 2300.
- the computing apparatus 2000 can include any type of computing device suitable for
- computing devices include “workstations,” “servers,” “laptops,” “desktops,” “tablet computers,” “handheld devices,” and the like.
- the computing apparatus 2000 can include more than one computing device such as, for example, in a distributing computing environment, a networked environment, and the like.
- a computing apparatus 2000 comprises a processor
- the storage device 2200 comprising a program 2210 that directs the processor 2100 receive pressure and temperature data from a formation tester 2300 to calculate a whether a drawdown phase has reached a pressure that is at or below that of a fluid in fluid communication with a flowline of the formation tester 2300 using, for example, any of Equations 1, 2, or 4.
- the program 2210 can also direct the processor 2100 to linearly interpolate temperature data using, for example, Equation 3.
- the program 2210 can also direct the processor 2100 to linearly interpolate pressure data.
- a computing apparatus 2000 can be configured to receive pressure and temperature data directly or indirectly from one or more pressure sensor 2310 and/or temperature sensor 2320.
- pressure sensor 2310 and temperature sensor 2320 are a single combined sensor.
- a computing apparatus 2000 can be configured to receive pressure and temperature data from a storage device (e.g., a storage device storing program 2210 or a different storage device) that has stored pressure and temperature data from one or more pressure and temperature sensor 2310, 2320.
- a storage device e.g., a storage device storing program 2210 or a different storage device
- a computing apparatus 2000 can be configured to perform calculations at substantially the same time as the measurements are recorded by one or more temperature and/or pressure sensor 2310, 2320.
- substantially the same time it is meant that calculations could be made at the same time or not at the exact same time pressure and/or temperature measurements are made, such as milliseconds to seconds apart or shorter or longer periods of time (e.g., 0.001, 0.03, 0.1, 0.5, 1, 2, 5, 10 or more seconds apart) that do not significantly adversely affect the benefit of the apparatus or methodology.
- a computing apparatus 2000 can be configured to perform calculations at a time point after pressure and temperature data points are recorded, for example, on a storage device.
- a computing apparatus 2000 further includes a display
- a computing apparatus 2000 includes an indicator (not shown) that displays an indication as to whether a drawdown phase had reached a pressure that is at or below that of a fluid exterior to formation tester 2300.
- a computing apparatus 2000 can be configured to automatically initiate another drawdown phase if a calculation using Equation 1, 2, or 4 indicates a drawdown phase did not reach a pressure at or below a pressure of a fluid outside of formation tester 2300.
- a computing apparatus 2000 can include one or more additional component, such as a power supply 2400, input/output (I/O) port 2500, I/O component 2600, and the like, as appropriate for a desired configuration or to perform selected functions.
- additional component such as a power supply 2400, input/output (I/O) port 2500, I/O component 2600, and the like, as appropriate for a desired configuration or to perform selected functions.
- components from computing apparatus 2000 can be included in a system further comprising a formation tester that includes a flowline and one or more sensor operable to measure temperature of a fluid exterior to the formation tester and measure pressure and temperature within the flowline.
- a system provided herein can include one or more additional components associated with formation testers and/or computing apparatuses described herein.
- computing apparatus 2000 can be directly or indirectly connected using any appropriate means, such as, for example, one or more busses 2700.
- the provided methods, software, and/or computing apparatuses can be used in geologic formations other than those containing oil, natural gas, or other petrochemicals.
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- Geology (AREA)
- Life Sciences & Earth Sciences (AREA)
- Engineering & Computer Science (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)
- Testing Of Devices, Machine Parts, Or Other Structures Thereof (AREA)
- Measuring Fluid Pressure (AREA)
- Measuring Temperature Or Quantity Of Heat (AREA)
Abstract
Description
Claims
Priority Applications (3)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US14/366,677 US20140330522A1 (en) | 2011-12-23 | 2012-12-20 | System and Method for Measuring Formation Properties |
| MX2014007772A MX2014007772A (en) | 2011-12-23 | 2012-12-20 | System and method for measuring formation properties. |
| BR112014015713A BR112014015713A8 (en) | 2011-12-23 | 2012-12-20 | method, and system |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| EP11290612.8 | 2011-12-23 | ||
| EP11290612.8A EP2607622B1 (en) | 2011-12-23 | 2011-12-23 | System and method for measuring formation properties |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2013096571A1 true WO2013096571A1 (en) | 2013-06-27 |
Family
ID=47559696
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/US2012/070852 Ceased WO2013096571A1 (en) | 2011-12-23 | 2012-12-20 | System and method for measuring formation properties |
Country Status (5)
| Country | Link |
|---|---|
| US (1) | US20140330522A1 (en) |
| EP (1) | EP2607622B1 (en) |
| BR (1) | BR112014015713A8 (en) |
| MX (1) | MX2014007772A (en) |
| WO (1) | WO2013096571A1 (en) |
Families Citing this family (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US9133708B2 (en) * | 2011-08-31 | 2015-09-15 | Schlumberger Technology Corporation | Estimation and compensation of pressure and flow induced distortion in mud-pulse telemetry |
| US10550687B2 (en) * | 2013-01-31 | 2020-02-04 | Schlumberger Technology Corporation | Methods for analyzing formation tester pretest data |
Citations (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US5741962A (en) * | 1996-04-05 | 1998-04-21 | Halliburton Energy Services, Inc. | Apparatus and method for analyzing a retrieving formation fluid utilizing acoustic measurements |
| US20020194907A1 (en) * | 1998-06-15 | 2002-12-26 | Schlumberger Technology Corporation | Method and apparatus for the detection of bubble point pressure |
| US20040045706A1 (en) * | 2002-09-09 | 2004-03-11 | Julian Pop | Method for measuring formation properties with a time-limited formation test |
| US20060191332A1 (en) * | 2005-02-28 | 2006-08-31 | Schlumberger Technology Corporation | Method for measuring formation properties with a formation tester |
| US20110042071A1 (en) * | 2009-08-18 | 2011-02-24 | Kai Hsu | Clean fluid sample for downhole measurements |
Family Cites Families (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US7334483B2 (en) * | 2006-01-27 | 2008-02-26 | Schlumberger Technology Corporation | Thermal compensation of pressure measurements |
| US9291051B2 (en) * | 2010-10-28 | 2016-03-22 | Conocophillips Company | Reservoir pressure testing to determine hydrate composition |
-
2011
- 2011-12-23 EP EP11290612.8A patent/EP2607622B1/en not_active Not-in-force
-
2012
- 2012-12-20 WO PCT/US2012/070852 patent/WO2013096571A1/en not_active Ceased
- 2012-12-20 BR BR112014015713A patent/BR112014015713A8/en not_active IP Right Cessation
- 2012-12-20 US US14/366,677 patent/US20140330522A1/en not_active Abandoned
- 2012-12-20 MX MX2014007772A patent/MX2014007772A/en unknown
Patent Citations (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US5741962A (en) * | 1996-04-05 | 1998-04-21 | Halliburton Energy Services, Inc. | Apparatus and method for analyzing a retrieving formation fluid utilizing acoustic measurements |
| US20020194907A1 (en) * | 1998-06-15 | 2002-12-26 | Schlumberger Technology Corporation | Method and apparatus for the detection of bubble point pressure |
| US20040045706A1 (en) * | 2002-09-09 | 2004-03-11 | Julian Pop | Method for measuring formation properties with a time-limited formation test |
| US20060191332A1 (en) * | 2005-02-28 | 2006-08-31 | Schlumberger Technology Corporation | Method for measuring formation properties with a formation tester |
| US20110042071A1 (en) * | 2009-08-18 | 2011-02-24 | Kai Hsu | Clean fluid sample for downhole measurements |
Also Published As
| Publication number | Publication date |
|---|---|
| MX2014007772A (en) | 2015-03-23 |
| BR112014015713A8 (en) | 2017-07-04 |
| EP2607622B1 (en) | 2015-10-07 |
| US20140330522A1 (en) | 2014-11-06 |
| EP2607622A1 (en) | 2013-06-26 |
| BR112014015713A2 (en) | 2017-06-13 |
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