WO2009108596A2 - Method of determining a transient electromagnetic response of a formation - Google Patents
Method of determining a transient electromagnetic response of a formation Download PDFInfo
- Publication number
- WO2009108596A2 WO2009108596A2 PCT/US2009/034849 US2009034849W WO2009108596A2 WO 2009108596 A2 WO2009108596 A2 WO 2009108596A2 US 2009034849 W US2009034849 W US 2009034849W WO 2009108596 A2 WO2009108596 A2 WO 2009108596A2
- Authority
- WO
- WIPO (PCT)
- Prior art keywords
- raw
- function
- signal
- receiver
- distance
- 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
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01V—GEOPHYSICS; GRAVITATIONAL MEASUREMENTS; DETECTING MASSES OR OBJECTS; TAGS
- G01V3/00—Electric or magnetic prospecting or detecting; Measuring magnetic field characteristics of the earth, e.g. declination, deviation
- G01V3/18—Electric or magnetic prospecting or detecting; Measuring magnetic field characteristics of the earth, e.g. declination, deviation specially adapted for well-logging
- G01V3/26—Electric or magnetic prospecting or detecting; Measuring magnetic field characteristics of the earth, e.g. declination, deviation specially adapted for well-logging operating with magnetic or electric fields produced or modified either by the surrounding earth formation or by the detecting device
- G01V3/28—Electric or magnetic prospecting or detecting; Measuring magnetic field characteristics of the earth, e.g. declination, deviation specially adapted for well-logging operating with magnetic or electric fields produced or modified either by the surrounding earth formation or by the detecting device using induction coils
Definitions
- This invention relates generally to signal processing in the context of geological exploration and, more specifically, to determining the transient electromagnetic response of a region of an earth formation.
- Electromagnetic investigation tools are often used to take measurements at points along the length of a borehole in an earth formation.
- the tools are attached to or associated with a support structure such as a mandrel, bar, shaft, spindle, housing, cable or wire line.
- a support structure such as a mandrel, bar, shaft, spindle, housing, cable or wire line.
- measurement tools may be attached to a high strength support structure that supports a drill bit as the drill bit forms a borehole.
- the high strength structure can cause the formation response measurements to be disrupted as the high strength structure is typically formed from an electrically conductive material, such as steel or another metal. Therefore, it is desirable to have a system and method that facilitate the removal or reduction of the contribution of the support structure to the measurement so as to reveal information that is provided by a formation response signal.
- the various embodiments of the present invention overcome the shortcomings of the prior art by providing a system and method for determining an electromagnetic response from a region in an earth formation.
- Raw response signals are measured with receivers at different offset distances from one or more transmitters.
- the receivers are electromagnetically coupled to the one or more transmitters by a support structure.
- the raw signals are adjusted according to an exemplary method to provide an adjusted signal where the effect of the support structure on the raw response signals is removed or reduced.
- the adjusted signal can be interpreted to determine information that is masked in the raw response signals.
- the adjusted signal reflects the electromagnetic response from the region of the earth formation.
- a measurement tool is conveyed into a borehole formed in the earth formation.
- the measurement tool can include multiple transmitters and multiple receivers.
- the measurement tool can include a transmitter, a first receiver, and a second receiver, each positioned on or near an electrically conductive support structure.
- the first receiver is positioned at a first distance from the transmitter and the second receiver is positioned at a second distance from the transmitter.
- One of the first receiver and the second receiver can be selected as a primary receiver and the other receiver can be selected as a secondary receiver, as described herein.
- a source signal is transmitted from the transmitter.
- the source signal incites a first raw signal in the first receiver and a second raw signal in the second receiver.
- a data acquisition unit measures the first raw signal and the second raw signal and the raw signals are stored in a memory of a computing unit.
- the raw response signals exhibit an effect from the support structure coupling the transmitters to the receivers such that in a masked time interval the raw response signals do not reflect formation response signals.
- the computing unit includes a processor unit that calculates an adjusted signal by determining a first function of the first raw signal, a second function of the second raw signal, a third function of the first distance, and a fourth function of the second distance.
- the third function and the fourth function relate the first function and the second function.
- the computing unit modifies at least one of the first function and the second function according to the relationship between the third function and the fourth function and subtracts one of the resulting first and second functions from the other of the resulting first and second functions.
- the first function is the first raw signal
- the second function is the second raw signal
- the third function is the inverse of the first distance cubed
- the fourth function is the inverse of the second distance cubed.
- the first function is the first raw signal
- the second function is the second raw signal
- the third function is the average of the first raw signal over the masked time interval
- the fourth function is a the average of the second raw signal over the masked time interval.
- a first reference signal and a second reference signal are respectively obtained at the first distance and the second distance in a reference medium having a resistivity that is higher than that of the region in the earth formation.
- the reference medium can have a resistivity that is at least ten times that of the earth formation.
- the computing unit can include memory that stores the first reference signal and the second reference signal.
- the first function is the first raw signal
- the second function is the second raw signal
- the third function is the first reference signal
- the fourth function is the second reference signal
- the first function is a first calibrated signal that is determined by subtracting the first reference signal from the first raw signal
- the second function is a second calibrated signal that is determined by subtracting the second reference signal from the second raw signal
- the third function is the first distance
- the fourth function is the second distance
- the first function is a first calibrated signal that is determined by subtracting the first reference signal from the first raw signal
- the second function is a second calibrated signal that is determined by subtracting the second reference signal from the second raw signal
- the third function is the average of the first calibrated signal over the masked time interval
- the fourth function is the average of the second calibrated signal over the masked time interval.
- the first function is a first calibrated signal that is determined by subtracting the first reference signal from the first raw signal
- the second function is a second calibrated signal that is determined by subtracting the second reference signal from the second raw signal
- the third function is the cube root of the first reference signal
- the fourth function is the cube root of the second reference signal.
- the adjusted signal can be interpreted to determine information about the formation that is masked by the raw response signals. For example, the number of layers present in the region in the formation may be determined by calculating the slope of the adjusted signal in the masked time interval.
- the method can be performed by the system where computer executable instructions are contained on a computer readable medium.
- a processor unit of the computing unit can execute the instructions.
- FIG. 1 is an illustration of a system for determining an electromagnetic response from a region of an earth formation.
- FIG. 2 is an illustration of the system of FIG. 1 in a homogenous region of the formation.
- FIGs. 3 and 4 are illustrations of the system of FIG. 1 in two layer regions of the formation.
- FIG. 5 is a graph illustrating signals relating to the homogeneous region of
- FIG. 6 and 7 are graphs illustrating signals relating to the two layer regions of FIGs. 3 and 4.
- FIG. 8 is a graph illustrating calibrated signals relating to the regions of
- FIGs. 2-4 are identical to FIGs. 2-4.
- FIG. 9 is a graph illustrating adjusted signals relating to the regions of
- FIGs. 2-4 are identical to FIGs. 2-4.
- a system 10 is configured to drill a borehole 12 in a formation 14 and to take measurements while drilling (MWD).
- MWD measurements while drilling
- a borehole is drilled, the drill string is removed, and a measurement tool is then lowered into the borehole by a cable or other suitable suspension means.
- a drill bit 16 is positioned at the end of a series of tubular elements, referred to as a drill string 18.
- Drill bit 16 can be directed by a steering system 20, such as a rotatable steering system or a sliding steering system. In certain applications, measurements facilitate directing drill bit 16, for example, toward a hydrocarbon fluid reservoir.
- System 10 includes a measurement tool 24 that is generally described as an array of transmitters and receivers and a corresponding support structure.
- the support structure is a part of drill string 18.
- the support structure provides a foundation to which the transmitters and receivers are attached or otherwise houses the array.
- the support structure will be described as a mandrel 32.
- the support structure could be any number of structures for supporting and positioning the array including a cable, housing, drill string element, combinations thereof, and the like.
- Illustrated measurement tool 24 includes a transmitter 26, a first receiver
- first receiver 28 is positioned at a first transmitter-receiver (TR) offset distance L1 from transmitter 26 and second receiver 30 is positioned at a second transmitter-receiver offset distance L2 from transmitter 26.
- TR transmitter-receiver
- each of transmitter 26 and receivers 28, 30 includes a coil antenna that is wound around mandrel 32.
- Transmitter 26 and receivers 28, 30 are thereby arranged to be substantially coaxial. This arrangement is used for purposes of teaching.
- transmitters and/or receivers can be multi-axial so as to send and receive signals along multiple axes.
- the measurement tool can include multiple transmitters and multiple receivers.
- a measurement tool includes a primary receiver and one or more secondary receivers.
- Various amounts of the responses from the secondary receivers are used to adjust the response of the primary receiver so as to minimize or reduce the mandrel effect, that is, the response due to electromagnetic coupling of transmitters and receivers by a mandrel or support structure.
- an adjusted signal can be the sum of the response of a primary receiver and responses of the secondary receivers where the responses of the secondary receivers are scaled, altered, or modified according to certain relationships.
- first receiver 28 is selected as the primary receiver and second receiver 30 is selected as the secondary receiver.
- the formulations of adjusted signals reflect this selection.
- second receiver 30 may be selected as the primary receiver and first receiver 28 may be selected as the secondary receiver.
- System 10 further includes a data acquisition unit 40 and a computing unit
- Computing unit 50 includes computer components including a data acquisition unit interface 52, an operator interface 54, a processor unit 56, a memory 58 for storing information, and a bus 60 that couples various system components including memory 58 to processor unit 56.
- Computing unit 50 can be positioned at the surface or at a remote location such that information collected by measurement tool 24 while in borehole 12 is readily available.
- a telemetry system can connect measurement tool 24, data acquisition unit 40, and computing unit 50.
- data acquisition unit 40 and/or computing unit 50 is combined with or integral to measurement tool 24 and processes signals while in borehole 12.
- a transient electromagnetic (TEM) response is useful, for example, in deep reading electromagnetic (DEM) well logging applications to identify the boundaries and properties of layers of a region of a formation 14 at relatively large distances from borehole 12.
- data acquisition unit 40 causes a current to flow through transmitter 26 so as to generate a magnetic field.
- the source signal or input to transmitter 26 may vary.
- current is passed through transmitter 26 for a time that is long enough to induce a substantially stable magnetic field. This magnetic field permeates both the region of formation 14 and mandrel 32.
- Raw response signals V raw include contributions from both the region of formation 14 and mandrel 32.
- Raw response signals V raw may be subjected to one or more operations such as noise suppression, pre-amplification, filtering, or transformation, prior to or as part of a method of adjusting the raw response signal.
- mandrel 32 electromagnetically couples transmitter 26 to receivers 28, 30 so as to mask the electromagnetic response of the region of formation 14.
- FIG. 2 illustrates measurement tool 24 positioned in a homogeneous region N1 of formation 14 that has a resistivity R1.
- FIGs. 3 and 4 illustrate measurement tool 24 in a heterogeneous region N2 of formation 14 having two layers 100, 102.
- layers 100, 102 have resistivities R2, R3, respectively, and in FIG. 4, layers 100, 102 have resistivities R3, R2, respectively.
- resistivity R3 is substantially greater than resistivity R2.
- a boundary 104 between layers 100, 102 is a distance D from measurement tool 24.
- FIG. 5 relate to homogeneous region N1 of FIG. 2.
- Raw response signal V raw and formation response signal V f of FIG. 6 relate to heterogeneous region N2 of FIG. 3 where measurement tool 24 is positioned in first layer 100 having resistivity R2.
- Raw response signal V raw and formation response signal V f of FIG. 7 relate to heterogeneous region N2 of FIG. 4 where measurement tool 24 is positioned in first layer 100 having resistivity R3.
- masked time interval M may be approximately 10 5 5 ⁇ ⁇ ⁇ 10 2 s .
- formation response signal V f decays essentially as r 5/2 (when plotted on a double logarithmic graph).
- raw response signal V raw decays substantially as r 1/2 .
- raw response signal V raw decays essentially as r 5/2 and reflects formation response signal V f .
- Raw response signal V raw may also reflect formation response signal V f at times before masked time interval M depending on the resistivity of the formation.
- Adjustment methods can be applied to raw response signals V raw to reduce the contribution of mandrel 32. Resulting adjusted signals V adj better reflect formation response signals V f or provide information about formation 14 that is present in the masked time interval M. Adjusted signals V ad j can be analyzed to facilitate determining the parameters of a model of formation 14, for example, the number of layers of formation 14. Generally, adjusted signals V ad j can be determined based on a relationship between raw response signals V raw or between raw response signals V raw and reference signals V ref .
- Reference signals V re f that are used in certain methods of adjusting are now described.
- Reference signals V re f are measured by receivers 28, 30 in a test environment.
- reference signals V ref are collected to calibrate measurement tool 24 and are stored in memory 58.
- a test environment is a substantially homogeneous reference medium that has a resistivity that is high relative to the resistivity of a region of formation 14 from which an electromagnetic response is to be determined.
- the resistivity of a suitable test environment can be at least ten times greater than the resistivity of the region of formation 14.
- An example of a widely used test environment is air.
- Reference signals V re f are collected in the same manner as raw response signals V raw with the difference being that reference signals V ref are collected in a test environment and raw response signals V raw are collected in a region of formation 14. Where the resistivity of the test environment is relatively high, the contribution of mandrel 32 to reference signal V re f is relatively high compared to the contribution of the test environment. Thus, reference signal V ref approximates the mandrel contribution.
- Vref is the same that is used to measure raw response signals V raw
- TR offset distances L1 , L2 are the same in both the test environment and formation 14 to provide a relationship between reference signals V ref and raw signals V raw that have the same offset.
- reference signals V ref measured by one measurement tool can be used to adjust raw response signals V raw measured by another measurement tool. For example, this may be acceptable where the different measurement tools have substantially equivalent conductive structures and arrays. In either case, reference signals V ref and raw response signals V raw that have the same offset can be related.
- V cal ⁇ t) V raw ⁇ t) - V At) .
- calibrated signal V ca ⁇ reduces the dominant mandrel effect of raw response signal V raw and decays essentially as r 3/2 for the masked time interval M. This decay is slower than that of formation response signal V f and is nearly proportional to the formation conductivity ⁇ f .
- Certain of the methods of adjusting are based on a relationship between raw response signals at different offset distances along the length of mandrel 32. These methods are termed “raw signal adjustment methods.” Other of the methods of adjusting are based on a relationship between calibrated signals at different offset distances along the length of mandrel 32. These methods are termed “calibrated signal adjustment methods.”
- Raw response signal V raw measured by one of receivers 28, 30 depends not only on the resistivity of mandrel 32 and mandrel 32 geometry (e.g., diameter), but also strongly on TR offset distance L1 , L2.
- Raw response signal V raw is nearly independent of the TR offset distance L1 , L2 if there is no mandrel 32.
- a combination of raw response signals V raw measured at multiple TR offset distances L1 , L2 can be used to reduce the mandrel effect and better reflect formation response signal V f .
- first adjusted signal V adj ,i can be determined whereby the first relationship is used to cancel out much of the mandrel contribution and better reflect formation response signal V f .
- First adjusted signal V a dj,i is given by
- V ad] ⁇ (t,L x ,L 2 ) V mw (t,L x ) - ( ⁇ V mw (t,L 2 ) .
- a second adjusted signal V a dj,2 can be given by
- ⁇ C ⁇ K a Jt, L x ) - P adja (L x ,L 2 )V mw (t,L 2 )
- modifying function P adj 2 (L x ,L 2 ) represents an observed or experimentally determined relationship found by analyzing the ratio of raw response signal V raw at first offset distance L1 to raw response signal V raw at second offset distance L2.
- modifying function P ad] 2 (L X ,L 2 ) can be determined by taking the average of the ratio over masked time interval M.
- modifying function P adj 2 (L x ,L 2 ) is also a function of time.
- This third relationship can similarly be used to provide a third adjusted signal V adj , 3 that cancels out much of the mandrel contribution and reflects a formation signal.
- Third adjusted signal V ad j,3 is given by
- calibrated signal V ca ⁇ is approximately inversely proportional to offset distance L1 , L2.
- a fourth relationship between calibrated signal V ca ⁇ at first offset distance L1 and calibrated signal V ca ⁇ at second offset distance L2 is given by
- a fourth adjusted signal V ad j,4 that incorporates the fourth relationship is given by
- V ⁇ djA (t,L ⁇ ,L 2 ) V c ⁇ l (t,L ⁇ ) - ⁇ V c ⁇ l (t,L 2 ) .
- V a dj,5 can accordingly be given by
- V ⁇ dj ⁇ ,L ⁇ ,L 2 ) V c ⁇ l ⁇ t,L ⁇ ) - P ⁇ du5 ⁇ L ⁇ ,L 2 )V c ⁇ l ⁇ t,L 2 )
- modifying function P ⁇ dh 5 (L ⁇ ,L 2 ) represents an observed or experimentally determined relationship found by analyzing the ratio of calibrated signal V ca ⁇ at first offset distance L1 to calibrated signal V ca ⁇ at second offset distance L2.
- a sixth adjusted signal V adji6 can be similarly related to the fourth adjusted signal V adji4 .
- Sixth adjusted signal V ad j, 6 is given by
- a generalized adjustment signal V adj that encompasses each adjustment signals V adj is given by where f1 is a function of raw response signal V raw at offset distance L1 , f2 is a function of raw response signal V raw at offset distance L2, f3 is a function of first distance L1 , and f4 is a function of second distance L2.
- functions Pl , f2 may be raw response signals V raw or calibrated signals V ca ⁇ and functions f3, f4 may be offset distances L1 , L2, reference signals V ref , raw response signals V raw , and variations thereof raised to an exponent.
- functions f3, f4 relate functions f1 , f2 to one another.
- Functions f3, f4 can be constant functions of offset distances L1 , L2, respectively, or functions of both time and offset distances L1 , L2, respectively.
- the graphs conceptually illustrate formation response signals V f , raw response signals V raw , calibrated signals V ca ⁇ , and adjusted response signals V ad j measured or calculated for each situation illustrated in FIGs. 2-4.
- adjusted response signal V adj is shown in each of FIGs. 5-7.
- Calibrated signal V ca ⁇ and adjusted response signal V adj of each formation reduce the mandrel contribution of the raw response signal V raw although neither fits formation response signal V f during masked time interval M.
- adjusted response signal V ad j reflects formation response signal V f better than calibrated signal V ca ⁇ .
- calibrated signals for V ca ⁇ comparing homogeneous and heterogeneous regions N1 , N2 are shown on the same graph.
- calibrated signals V ca ⁇ will be represented with unique element numbers.
- a first calibrated signal C1 is determined from raw response signal V raw measured in homogeneous region N1 where resistivity R1 is equal to resistivity R2.
- a second calibrated signal C2 is determined from raw response signal V raw measured in homogeneous region N1 where resistivity R1 is equal to resistivity R3.
- a third calibrated signal C3 is determined from raw response signal V raw measured in heterogeneous region N2 where measurement tool 24 is positioned in first layer 100 having resistivity R2, as shown in FIG. 3.
- a fourth calibrated signal C4 is determined from raw response signal V raw measured in heterogeneous region N2 where measurement tool 24 is positioned in first layer 100 having resistivity R3, as shown in FIG. 4.
- the difference between calibrated signals C2, C4 due to the different regions N1 , N2 is mainly observed in the form of a shift of the overall response. As this difference is similar to the difference that is observed between calibrated signals C1 , C2 due to the difference in resistivity R2, R3 in the same region N1 , it is difficult to determine whether calibrated signal C4 represents heterogeneous region N2 or homogeneous region N1. In other words, the calibrated signal C3, C4 of heterogeneous region N2 may be wrongly interpreted as that of homogeneous region N1.
- adjusted signals V adj measured in different homogeneous and heterogeneous regions N1 , N2 are shown on the same graph.
- adjusted signals V ad j will be represented with unique element numbers.
- a first adjusted signal A1 is determined from raw response signal V raw measured in homogeneous region N1 where resistivity R1 is equal to resistivity R2.
- a second adjusted signal A2 is determined from raw response signal V raw measured in homogeneous region N1 where resistivity R1 is equal to resistivity R3.
- a third adjusted signal A3 is determined from raw response signal V raw measured in heterogeneous region N2 where measurement tool 24 is positioned in first layer 100 having a resistivity R2, as shown in FIG. 3.
- a fourth adjusted signal A4 is determined from raw response signal V raw measured in heterogeneous region N2 where measurement tool 24 is positioned in first layer 100 having a resistivity R3, as shown in FIG. 4.
- the adjusted signals A3, A4 measured in heterogeneous regions N2 transition from the adjusted signals A1 , A2 measured in homogeneous region N1 thereby clearly delineating the presence of a second layer.
- adjusted signal A3 is more difficult to distinguish from adjusted signal A1.
- raw response signal V raw can be adjusted according to methods of adjusting described herein to provide adjusted response signal V adj .
- Adjusted response signal V a dj at different points along the length of borehole 12 can be compared to one another to gain information about the formation 14 that is present in masked time interval M of each.
- masked time interval M of adjusted response signal V adj may have a certain slope in a substantially homogeneous region and, at another point along the length of borehole, masked time interval M of adjusted response signal V ad j may have a slope that transitions from that of the other adjusted response signal V adj thereby indicating the presence of at least a second layer.
Landscapes
- Physics & Mathematics (AREA)
- Engineering & Computer Science (AREA)
- Remote Sensing (AREA)
- Life Sciences & Earth Sciences (AREA)
- Electromagnetism (AREA)
- Environmental & Geological Engineering (AREA)
- Geology (AREA)
- General Life Sciences & Earth Sciences (AREA)
- General Physics & Mathematics (AREA)
- Geophysics (AREA)
- Geophysics And Detection Of Objects (AREA)
Abstract
Description
Claims
Priority Applications (3)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| AU2009219487A AU2009219487B2 (en) | 2008-02-25 | 2009-02-23 | Method of determining a transient electromagnetic response of a formation |
| CA2715792A CA2715792A1 (en) | 2008-02-25 | 2009-02-23 | Method of determining a transient electromagnetic response of a formation |
| US12/919,054 US20110071762A1 (en) | 2008-02-25 | 2009-02-23 | Method of determining a transient electromagnetic response of a formation |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US3111608P | 2008-02-25 | 2008-02-25 | |
| US61/031,116 | 2008-02-25 |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| WO2009108596A2 true WO2009108596A2 (en) | 2009-09-03 |
| WO2009108596A3 WO2009108596A3 (en) | 2009-11-26 |
Family
ID=41016680
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/US2009/034849 Ceased WO2009108596A2 (en) | 2008-02-25 | 2009-02-23 | Method of determining a transient electromagnetic response of a formation |
Country Status (4)
| Country | Link |
|---|---|
| US (1) | US20110071762A1 (en) |
| AU (1) | AU2009219487B2 (en) |
| CA (1) | CA2715792A1 (en) |
| WO (1) | WO2009108596A2 (en) |
Families Citing this family (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US9851319B2 (en) | 2013-05-03 | 2017-12-26 | Halliburton Energy Services, Inc. | Non-contact fluid resistivity measurement |
| CN103235345B (en) * | 2013-05-10 | 2015-11-18 | 中煤科工集团西安研究院有限公司 | Attenuation curve slope is utilized to correct the method for little wire frame transient electromagnetic inductive effect |
| MX2018002021A (en) | 2015-09-17 | 2018-04-13 | Halliburton Energy Services Inc | Using an adjusted drive pulse in formation evaluation. |
| US10605073B2 (en) * | 2016-09-15 | 2020-03-31 | Shanjun Li | System and methodology of look ahead and look around LWD tool |
Family Cites Families (6)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US4849699A (en) * | 1987-06-08 | 1989-07-18 | Mpi, Inc. | Extended range, pulsed induction logging tool and method of use |
| US4940943A (en) * | 1988-04-19 | 1990-07-10 | Baroid Technology, Inc. | Method and apparatus for optimizing the reception pattern of the antenna of a propagating electromagnetic wave logging tool |
| US6216090B1 (en) * | 1999-09-10 | 2001-04-10 | Halliburton Energy Services, Inc. | Interferometric processing method to identify bed boundaries |
| US6541975B2 (en) * | 2001-08-23 | 2003-04-01 | Kjt Enterprises, Inc. | Integrated borehole system for reservoir detection and monitoring |
| US6891376B2 (en) * | 2003-07-01 | 2005-05-10 | Kjt Enterprises, Inc. | Method for attenuating conductive sonde mandrel effects in an electromagnetic induction well logging apparatus |
| EA012740B1 (en) * | 2005-08-03 | 2009-12-30 | Шелл Интернэшнл Рисерч Маатсхаппий Б.В. | Method and system for determining an electromagnetic response from an earth formation and method of drilling borehole and method of producing a hydrocarbon fluid |
-
2009
- 2009-02-23 US US12/919,054 patent/US20110071762A1/en not_active Abandoned
- 2009-02-23 AU AU2009219487A patent/AU2009219487B2/en not_active Expired - Fee Related
- 2009-02-23 CA CA2715792A patent/CA2715792A1/en not_active Abandoned
- 2009-02-23 WO PCT/US2009/034849 patent/WO2009108596A2/en not_active Ceased
Also Published As
| Publication number | Publication date |
|---|---|
| US20110071762A1 (en) | 2011-03-24 |
| AU2009219487A1 (en) | 2009-09-03 |
| AU2009219487B2 (en) | 2011-11-17 |
| WO2009108596A3 (en) | 2009-11-26 |
| CA2715792A1 (en) | 2009-09-03 |
Similar Documents
| Publication | Publication Date | Title |
|---|---|---|
| EP1546980B1 (en) | Simultaneous resolution enhancement and dip correction of resistivity logs through nonlinear iterative deconvolution | |
| US8239172B2 (en) | Method of deep resistivity transient measurement while drilling | |
| CA2578985C (en) | Multi frequency focusing for mwd resistivity tools | |
| US10295698B2 (en) | Multi-component induction logging systems and methods using selected frequency inversion | |
| US9310511B2 (en) | Apparatus and method for deep transient resistivity measurement | |
| CN101191838B (en) | Method for determining an effective formation conductivity for induction log borehole correction | |
| EP3427090B1 (en) | Method and apparatus for active suppression of pipe signals in transient electromagnetic measurements | |
| US20100179762A1 (en) | Method of Correcting Imaging Data For Standoff and Borehole Rugosity | |
| US20090240435A1 (en) | Method and apparatus for eliminating drill effect in pulse induction measurements | |
| MXPA04012088A (en) | Method for determining sonde error for an induction or propagation tool with transverse or triaxial arrays. | |
| US20040098201A1 (en) | Multi-frequency focusing for MWD resistivity tools | |
| US10156655B2 (en) | Method and apparatus for measurement of pipe signals for downhole transient electromagnetic processing | |
| EP3430444B1 (en) | Method and apparatus for correction of transient electromagnetic signals to remove a pipe response | |
| US10365395B2 (en) | Multi-component induction logging systems and methods using blended-model inversion | |
| US9121963B2 (en) | Dual mode balancing in OBM resistivity imaging | |
| AU2009219487B2 (en) | Method of determining a transient electromagnetic response of a formation | |
| US20180245456A1 (en) | Defect evaluation using holographic imaging | |
| US9354347B2 (en) | Method and apparatus for deep transient resistivity measurement while drilling | |
| US9229125B2 (en) | TDEM forward focusing system for downhole use | |
| WO2017146695A1 (en) | Signal cancellation in pipe inspection |
Legal Events
| Date | Code | Title | Description |
|---|---|---|---|
| 121 | Ep: the epo has been informed by wipo that ep was designated in this application |
Ref document number: 09715179 Country of ref document: EP Kind code of ref document: A2 |
|
| WWE | Wipo information: entry into national phase |
Ref document number: 2009219487 Country of ref document: AU |
|
| WWE | Wipo information: entry into national phase |
Ref document number: 2715792 Country of ref document: CA |
|
| ENP | Entry into the national phase |
Ref document number: 2009219487 Country of ref document: AU Date of ref document: 20090223 Kind code of ref document: A |
|
| NENP | Non-entry into the national phase |
Ref country code: DE |
|
| WWE | Wipo information: entry into national phase |
Ref document number: 12919054 Country of ref document: US |
|
| 122 | Ep: pct application non-entry in european phase |
Ref document number: 09715179 Country of ref document: EP Kind code of ref document: A2 |

