WO2010135554A2 - Methods and apparatus for providing complimentary resistivity and standoff image - Google Patents
Methods and apparatus for providing complimentary resistivity and standoff image Download PDFInfo
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- WO2010135554A2 WO2010135554A2 PCT/US2010/035615 US2010035615W WO2010135554A2 WO 2010135554 A2 WO2010135554 A2 WO 2010135554A2 US 2010035615 W US2010035615 W US 2010035615W WO 2010135554 A2 WO2010135554 A2 WO 2010135554A2
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- 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
- G01V3/20—Electric or magnetic prospecting or detecting; Measuring magnetic field characteristics of the earth, e.g. declination, deviation specially adapted for well-logging operating with propagation of electric current
- G01V3/24—Electric or magnetic prospecting or detecting; Measuring magnetic field characteristics of the earth, e.g. declination, deviation specially adapted for well-logging operating with propagation of electric current using AC
-
- 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
-
- 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
- G01V3/20—Electric or magnetic prospecting or detecting; Measuring magnetic field characteristics of the earth, e.g. declination, deviation specially adapted for well-logging operating with propagation of electric current
Definitions
- the teachings herein relate to imaging sub-surface materials and geologic formations, and in particular, to systems and methods for providing formation resistivity image.
- drilling mud In underground drilling applications, such as oil and gas exploration and recovery, a borehole is drilled into the earth. As a part of the drilling process, drilling mud is typically introduced into the borehole. While drilling mud prevents rapid depressurization (i.e., a "blowout") and is therefore beneficial, use of drilling mud can complicate measurements taken to ascertain exploration information.
- drilling mud One type of drilling mud is referred to as “oil-based” mud, while another is “water-based” mud.
- Other fluids found in the borehole include, for example, formation fluids such as oil, gas, water, salted water as well as various combinations of these and other fluids. Separating an influence of the drilling mud on measurements of these other fluids can be a complicated task, and make imaging of the surrounding volume difficult. High resistivity of the "oil-based” mud complicates evaluation of formation properties since it makes difficult to penetrate current into the formation.
- resistivity imaging One technique for studying downhole formations is resistivity imaging. Many factors can affect the resolution of the resistivity imaging instruments. For example, tool standoff (i.e., the gap between the surface of the sensor and the wall of the borehole), variability of the standoff, and variability of the electrical properties of the drilling mud as well as the formation properties can all affect resolution of the resistivity imaging instrument.
- tool standoff i.e., the gap between the surface of the sensor and the wall of the borehole
- variability of the standoff i.e., the gap between the surface of the sensor and the wall of the borehole
- variability of the standoff variability of the electrical properties of the drilling mud as well as the formation properties
- variability of the electrical properties of the drilling mud as well as the formation properties can all affect resolution of the resistivity imaging instrument.
- One particular challenging situation for imaging low resistivity formations arises in the wells where the oil-based mud has been used as a drilling fluid
- the total impedance, measured by a resistivity imaging instrument primarily includes three sequentially connected
- impedance of the instrument measurement circuit has been known and small compared to those of the formation and drilling fluid, and, therefore, could be easy accounted for or often neglected. Accordingly, sensitivity of the instrument to the changes in resistivity of the formation deteriorates as a contribution of the formation into the overall impedance goes down.
- the a method for presenting a formation property includes estimating an initial property of the formation using a tool conveyed in a borehole; estimating a relationship between the tool and the formation based on information received from the tool; presenting the user a first output based at least in part on the initial property; and presenting a second output based at least in part on the relationship proximate the first output.
- a computer program product for presenting two or more images of sub-surface materials includes a storage medium readable by a processing circuit and storing instructions for execution by the processing circuit for facilitating a method including: estimating an initial property of the formation using a tool conveyed in a borehole; estimating a relationship between the tool and the formation based on information received from the tool; presenting the user a first output based at least in part on the initial property; and presenting a second output based at least in part on the relationship proximate the first output.
- a system for presenting a formation property to a user includes a processor that receives information from a tool conveyed in a borehole proximate the earth formation, the processor estimating an initial property of the formation and estimating a relationship between the tool and the formation based on information received from the tool.
- the system of this embodiment also includes a graphical user interface in cooperation with the processor that displays a first output based on the initial property and a second output based on the relationship, the second output being displayed proximate the first output.
- a method for presenting a formation property to a user includes estimating an initial property of the formation using a tool conveyed in a borehole; estimating a relationship between the tool and the formation based on information received from the tool; and presenting the user a first output based on the initial property and the relationship, the portion of the first output based on the initial property being muted when the relationship exceeds a preset amount.
- FIG. 1 illustrates an exemplary imaging instrument suspended in a borehole in accordance with exemplary embodiments
- FIG. 2 illustrates an example of a processing system on which various a aspects of present invention may be implemented
- FIG. 3 is a flow chart providing an exemplary method
- FIG. 4 illustrates a partial top down view of a pad having offset electrodes
- FIG. 5 illustrates an exemplary equivalent schematic circuit diagram of a sensor electrode
- FIG. 6 illustrates an exemplary method for impedance measurement and calculation implementing dual stand off arrangements
- FIG. 7 is an illustration of a resistivity image in combination with a standoff image according to the teachings herein.
- the methods and apparatus call for deriving an imaginary part of the impedance for resistivity measurements and then deriving standoff values.
- the standoff values may be derived through a priori knowledge of a dielectric constant for drilling mud, or by performing measurements downhole and estimating the dielectric constant from the measurements.
- An exemplary instrument for making resistivity measurements is available from Baker Hughes, Incorporated of Houston, Texas.
- the instrument referred to as an "Earth Imager,” has provided for a variety of resistivity images.
- FIG. 1 there is shown a depiction of a prior art instrument 21 for performing resistivity imaging.
- the instrument 21 is disposed within a wellbore 11 (also referred to as a "borehole") that traverses underground formations 10.
- the instrument 21 includes pads 3 mounted on articulating arms 2. In operation, the articulated pads 3 are typically pressed up against a wall of the wellbore 11 and make firm contact therewith.
- Current, / flows from at least one transmitter electrode 6 on the pad 3 to at least one return electrode 4.
- the return electrode 4 is electrically separated from each transmitter electrode 6 by an insulator 5.
- the current, / is typically alternating current (AC).
- At least one return electrode 4 and at least one transmitter electrode 6 are co-located on the pad 3.
- the electrodes may be large, small, concentric, opposing, aligned, parallel, orthogonal or described by other such terms.
- the at least one return electrode 4 and the at least one transmitter electrode 6 are referred to as a "sensor.”
- drilling mud may be pumped into the wellbore 11 from a pit, using various pumping components, and is often circulated from the wellbore 11 back to the pit.
- the wellbore 11 is at least partially filled with a mixture of fluids including water, drilling mud, oil and formation fluids that are indigenous to the formations 10 penetrated by the wellbore 11 (also referred to as a "borehole").
- the instrument 21 is generally suspended in the wellbore 11 at the bottom end of a wireline.
- the wireline is often carried over a pulley supported by a derrick.
- Wireline deployment and retrieval is typically performed by a powered winch carried by a service truck or skid. Aside from deployment by the service truck or the skid, the instrument 21 may be deployed using any other technique that is deemed suitable.
- the imaging instrument 21 is used during wireline logging (that is, after drilling), and is deployed by wireline as part of a downhole tool.
- wireline logging that is, after drilling
- the instrument 21 may be deployed using coil tubing, a pipe, a drill string, a tractor, or any other technique that is deemed suitable.
- the instrument 21 or some external component such as the service truck, include electronics and support equipment to operate the instrument 21. Included with the electronics and support equipment is a power supply for providing power to the instrument 21, processing capabilities, data storage, memory and other such components as needed.
- the power provided to the instrument 21 may be delivered over a broad range of frequencies, /, and currents, /.
- Signal analysis may include known techniques for analog signal processing and digital signal processing as appropriate.
- the power supply for the sensor provides alternating current (AC) that is in a relatively high frequency, /, range (for example, of about 1 MHz to about 10 MHz).
- AC alternating current
- the sensor may be operated at frequencies above or below this range, and alternatively, the sensor may be used with direct current (DC) if desired.
- the term “formation” and other similar terms generally refer to sub-surface materials that are located within a survey volume, which generally surrounds a wellbore (or “borehole”). That is, a “formation” is not limited to geologic formations as conventionally considered, and may generally include any materials of interest found downhole.
- the term “real-time” generally refers to a temporal context that is frequent enough for users to make meaningful decisions such as operational decisions where logging routines may be adjusted according to data provided. The terms used herein are adopted for convention and purposes of illustration and are not to be construed as limiting of the invention.
- oil-based mud is generally regarded as being "non- conductive.”
- oil-based mud and the variations of drilling mud as may be useful for practice of the teachings herein are conductive at least to some degree.
- non-conductive may be used herein with regard to oil-based mud and similar drilling fluids, this use is merely indicative of electrical properties and not considered to be limiting of the teachings herein.
- a dielectric constant for the mud, ⁇ m is generally variable. Therefore, as is the case in some of the embodiments provided herein, it may be desirable to characterize the dielectric constant for the mud, ⁇ m , downhole.
- Embodiments of the present invention may analyze information and display information about formations.
- a processing system may be utilized.
- the system 150 has one or more central processing units (processors) 151a, 151b, 151c, etc. (collectively or generically referred to as processor(s) 151).
- processors 151 may include a reduced instruction set computer (RISC) microprocessor.
- RISC reduced instruction set computer
- processors 151 are coupled to system memory 164 and various other components via a system bus 163.
- ROM Read only memory
- BIOS basic input/output system
- Fig. 1 further depicts an input/output (I/O) adapter 157 and a network adapter 156 coupled to the system bus 153.
- I/O adapter 157 may be a small computer system interface (SCSI) adapter that communicates with a hard disk 153 and/or tape storage drive 155 or any other similar component.
- I/O adapter 157, hard disk 153, and tape storage device 155 are collectively referred to herein as mass storage 154.
- a network adapter 156 interconnects bus 163 with an outside network 166 enabling data processing system 150 to communicate with other such systems.
- a screen (e.g., a display monitor) 165 is connected to system bus 163 by display adaptor 162, which may include a graphics adapter to improve the performance of graphics intensive applications and a video controller.
- adapters 157, 156, and 152 may be connected to one or more I/O busses that are connected to system bus 153 via an intermediate bus bridge (not shown).
- Suitable I/O buses for connecting peripheral devices such as hard disk controllers, network adapters, and graphics adapters typically include common protocols, such as the Peripheral Components Interface (PCI).
- PCI Peripheral Components Interface
- Additional input/output devices are shown as connected to system bus 163 via user interface adapter 158 and display adapter 162.
- a keyboard 159, mouse 160, and speaker 161 all interconnected to bus 163 via user interface adapter 158, which may include, for example, a Super I/O chip integrating multiple device adapters into a single integrated circuit.
- the system 150 includes processing means in the form of processors 151, storage means including system memory 164 and mass storage 154, input means such as keyboard 159 and mouse 160, and output means including speaker 161 and display 165.
- processing means in the form of processors 151
- storage means including system memory 164 and mass storage 154
- input means such as keyboard 159 and mouse 160
- output means including speaker 161 and display 165.
- a portion of system memory 164 and mass storage 154 collectively store an operating system.
- system 150 can be any suitable computer or computing platform, and may include a terminal, wireless device, information appliance, device, workstation, mini-computer, mainframe computer, personal digital assistant (PDA) or other computing device. It shall be understood that the system 150 may include multiple computing devices linked together by a communication network. For example, there may exist a client-server relationship between two systems and processing may be split between the two.
- PDA personal digital assistant
- the system 150 also includes a network interface 106 for communicating over a network 166.
- the network 166 can be a local-area network (LAN), a metro-area network (MAN), or wide-area network (WAN), such as the Internet or World Wide Web.
- Users of the system 150 can connect to the network through any suitable network interface 166 connection, such as standard telephone lines, digital subscriber line, LAN or WAN links (e.g., Tl, T3), broadband connections (Frame Relay, ATM), and wireless connections (e.g., 802.11(a), 802.11(b), 802.11(g)).
- network interface 166 connection such as standard telephone lines, digital subscriber line, LAN or WAN links (e.g., Tl, T3), broadband connections (Frame Relay, ATM), and wireless connections (e.g., 802.11(a), 802.11(b), 802.11(g)).
- the system 150 may machine-readable instructions stored on machine readable media (for example, the hard disk 154) for capture and interactive display of information shown on the screen 165 of a user.
- machine readable media for example, the hard disk 1504.
- FIG. 3 a method of the invention is presented in FIG. 3.
- the invention includes a method for presenting dual images 30.
- a first stage 31 the method for presenting dual images 30 calls for deriving both real and imaginary part of the impedance, Z 1 , from impedance measurement data. This is discussed in greater detail below.
- the method for presenting dual images 30 calls for deriving associated standoff values, d, using imaginary part of the impedance, Z 1 . This is also discussed in greater detail below.
- the method for presenting dual images 30 calls for correlating the standoff values, d, with respective resistivity image, derived from real part impedances. As techniques for correlating and providing graphic data are well known, this stage is not discussed in greater detail.
- Z Amp represents an amplitude of the measured impedance, Z
- ⁇ represents a phase of the measured impedance, Z.
- the standoff, S can be easily derived from the measurements (note that the imaginary part of the impedance, Z 1 , is also represented by similar variables, such as Z 2 further herein).
- the capacitance, C uniquely depends on the standoff, S, Eq. (2) may be used: (2);
- a measured imaginary part of impedance may be expressed as in Eq. (3):
- k represents a constant portion of Eq. (4) equal to lOOO- ⁇ - ⁇ m - ⁇ o-A, if standoff S is measured in mm.
- the constant, k may be estimated as:
- Estimation of the dielectric constant of the mud, ⁇ m may be performed in various ways.
- One technique is to use supplied values, such as would be provided by a provider of the drilling mud.
- Another technique is to perform measurements topside (e.g., such as in the pit), and calculate the dielectric constant of the mud, ⁇ m , from those measurements.
- a third technique is presented in U.S. Patent Application No. 11/748,696.
- a sensor that includes offset electrodes is disclosed.
- offset and other similar terms make reference to a recess or protrusion of some dimension where a sensor electrode lies below (or above) a generally planar surface of the pad that includes the electrode.
- standoff makes reference to a region between the sensor electrode and a wall of the borehole.
- a sensor electrode may include an offset without being disposed in a borehole having a drilling fluid. When disposed in a borehole, the sensor electrodes having different offset dimensions will likewise have differing standoff values.
- the dual offset sensor electrodes e.g., at least two mutually offset electrodes
- resistance of a formation can be calculated with only slight dependence on parasitic effects of standoff, variability of standoff, and variability of the mud electrical properties.
- the dual offset sensor electrodes can further be implemented to calculate resistivity of drilling mud as well as a dielectric constant of the drilling mud. These calculations may be performed independent of one another. It is appreciated that the systems and methods described herein can be implemented with operations including, but not limited to measurement-while-drilling (MWD), logging-while-drilling (LWD), logging- while-tripping (LWT), etc.
- MWD measurement-while-drilling
- LWD logging-while-drilling
- LWT logging- while-tripping
- data from one image may be used to blank or mute parts of another image.
- a single image may be displayed with portions muted.
- a portions of a resistivity image may be muted when the standoff corresponding to those portions exceeds a preset amount.
- FIG. 4 illustrates a partial top side view of the exemplary pad 3 having dual standoff sensor electrode pairs 110.
- the imaging instrument 21 (partially shown) is suspended in the borehole 11 (partially shown).
- oil- based mud 15 is shown as disposed in the borehole 11 and further disposed within channels 125.
- the sensor electrodes may be considered to be either one of transmitter electrodes or return electrodes. In other embodiments, certain other functions and/or nomenclature may be applied to the sensor electrodes.
- first sensor electrode 115 and a second sensor electrode 120 are positioned at two different standoffs, S 1 , S 2, with respect to the horizontal.
- the first sensor electrode 115 is positioned at standoff Si and the second, recessed, sensor electrode 120 is positioned at standoff S 2 .
- the resistivity of the formation Pformation (as well as the dielectric properties Eformation) can be calculated as now described.
- the electrical properties of the oil-based mud 15 (e.g., Pmud, ⁇ mu( j) disposed within the borehole 250 can also be calculated.
- the pad 3 can be used to take complex impedance measurements within the borehole 11 via capacitive coupling between the first sensor electrode 115, the second sensor electrode 120 and the formation 10. Magnitudes and mutual phases of voltage drops and current flows are measured between the return electrode and each sensor electrode 115, 120 during respective measurements. As such, each sensor electrode 115, 120 may be used to inject current into the formation 10 and return measurements may be obtained in the return electrode. Commands for injection of current and respective measurements can be executed from an electronics module. Subsequent calculations of the electrical properties can be executed by use of support computing or processing capabilities.
- FIG. 5 illustrates an exemplary equivalent schematic circuit diagram for one of the sensor electrodes 115, 120, and provides a review of problems associated with performing certain resistivity measurements.
- the measured effective impedance Z includes impedance of the gap (Z G ) between the respective sensor electrode and the formation 10 wherein r and C are the equivalent resistance and capacitance component of the mud filling the gap and a resistance of the formation, Rp.
- the contribution of the formation 10 into the effective impedance Z is small ( ⁇ R F ⁇ « ⁇ Z G ⁇ ). .
- the relatively large gap impedance Z G that depends on the mud properties is thus a major contributor into the measured total impedance. Accordingly, the teachings herein provide techniques for reduction such contributions to the measured total impedance, Z.
- influence of the oil-based drilling mud 15 on formation resistivity image is effectively eliminated by taking two impedance measurements at two different standoff distances S 1 , S 2 .
- two separate complex impedance measurements are taken using the first sensor electrode 115 and the second sensor electrode 120, which are disposed at respective standoffs S 1 , S 2 .
- the first sensor electrode 115 and the second sensor electrode 120 have common physical characteristics such as shape and area, A. The common characteristics provide for substantial elimination of variability arising from measurement circuit components. Refer again now to FIG. 4.
- the first sensor electrode 115 is disposed at a first standoff distance, (or "standoff) of Si.
- the second sensor electrode 120 is disposed at a standoff distance of S 2 .
- the standoff distance, S represents a distance between a respective sensor electrode and a wall of the borehole 11. Not that position of the return electrode remains unchanged.
- ⁇ C 1 ⁇ 2 C 2 .
- r ⁇ , r 2 , C 1 , C 2 are equivalent resistances and capacitances of the mud placed between sensor electrodes at two standoffs Si, S 2 .
- the impedances measured by each of the sensor electrodes 115, 120 can be represented as: r t COC
- Z 9 R F + Z J n G 7 2
- Z J r G 9 2 - - — i 2 2 l + (r 2 C 2 ⁇ )) 2 l + (r 2 C 2 ⁇ Y
- a 1 ⁇ ⁇ + R F
- a 2 ⁇ T — + R F
- the resistance of the formation, Rp can be calculated as follows: r
- a dual standoff arrangement can be achieved with other structural arrangements.
- the first sensor electrode 115 can be flush with the insulator 130 as discussed above.
- the second sensor electrode 120 can be disposed on the surface 131 of the insulator 130, which still results in an arrangement having a distance differential between the first sensor electrode 115 and the second sensor electrode 120.
- a single retractable sensor electrode (not shown) can be disposed on the pad 100 within the insulator 130.
- a first set of measurements can be taken with the retractable sensor electrode positioned at a first standoff from the borehole wall.
- a second set of measurements can then be taken with the retractable sensor electrodes positioned at a second standoff from the borehole wall. The two sets of measurements can then be used to calculate the resistivities as described herein.
- formation dielectric properties can also be calculated with the methods and systems described herein. To take into consideration dielectric properties of the formation, extra measurements can be taken under the same conditions as described herein. However, a different frequency Cu from the operational frequency as discussed above can be implemented. As such, using a set of dual frequencies and dual standoff data, both resistivity and dielectric constant of the formation can be derived.
- FIG. 6 illustrates an exemplary impedance measurement and calculation method 500 implementing dual standoff arrangements.
- the known electrical and physical characteristics of the sensor electrodes used in the measurements are stored in the computer.
- the known physical characteristics e.g., the area, A
- the operational frequency ⁇ of the instrument 21 is selected.
- the instrument 21 is positioned in the borehole 12 at the position in which desired electrical properties of the formation 10 are to be measured. It is appreciated that steps 505-515 can be performed simultaneously, at distinct intervals or in an alternative order.
- step 520 current from the sensor electrode is injected into the formation 10 at a first standoff S 1 .
- step 525 the return current is measured.
- step 530 current from the sensor electrode is injected into the formation 13 at a second standoff S 2 and the return current is measured at step 535.
- the two different current injections and return current measurements are implemented via the sensor electrodes 115, 120 disposed at the two fixed dual standoffs S 1 , S 2 .
- a single sensor electrode can be adjustable such that the single sensor electrode can be positioned at the two different standoffs S 1 , S 2 to make the measurements as described.
- the gap impedances Z G can be calculated as described above. From the gap impedance measurements, and the known electrical and physical characteristics of the sensor electrodes used in the measurements, the electrical characteristics of the borehole 11 can be calculated at step 545. As described above, the electrical characteristics of both the formation 10 and the drilling mud 15 can be calculated from the known electrical and physical characteristics of the sensor electrode and the operational frequencies of the instrument 21.
- the first image 702 is produced using the real part of impedance measurement data, while the second image 704 is produced using the imaginary part of the measured impedances.
- the first image 702 is displayed at the same time and on the same display as the second image 704.
- the first image 702 is displayed proximate to the second image 704. That is, the first image 702 and the second image 704 need not be displayed directly next to one another but, rather, need only be displayed such that both may be viewed at the same time on the same screen.
- the first image 702 may be referred to as resistivity image and the second image 704 as the standoff image.
- the imaginary part of the measured impedances were converted into the standoff image 704 presented according to the technique described above.
- the standoff image 704 By looking into the standoff image 704, it may be concluded that some features of resistivity image should not be interpreted as being representative of the formation, but rather positioning of the pad with respect to the borehole.
- the graphic images are shown in color, the information provided to users is rich and meaningful.
- a first portion 706 of the resistivity image 702 may be disregarded based on standoff image portion 710 and a second portion 708 of the resistivity image 702 may be disregarded based on standoff image 710.
- the data in the first image 702 is associated with the data presented in the second image 704. That is, the data in the images may be correlated by at least one of depth, sensor identification and the like.
- portions of the resitivity image may be muted or otherwise rendered unreadable in the event a corresponding standoff exceeds a particular threshold.
- the standoff image 704 may be omitted and portions 706 and 708 of the resitivity image 702 muted in one embodiment.
- a computer program product includes aspects such as a user interface. Aside from receiving input for directing output to at least one of a display screen, a printer, a plotter, and the like, the interface may let users select or parse certain information. For example, the computer program product may enable the user to expand an area of interest (i.e., "zoom in"), collapse data (i.e., "zoom out"), and further may permit users to display data from multiple wellbores 11, such as on one screen (such that comparative analyses of wells may be performed). In addition, users may input data, such as the relative dielectric constant of the mud, ⁇ m , in support of the teachings herein, and also such that various "what if scenarios may be explored and the like.
- an area of interest i.e., "zoom in”
- collapse data i.e., "zoom out”
- users may input data, such as the relative dielectric constant of the mud, ⁇ m , in support of the teachings herein, and also
- various analysis components may be used, including digital and/or an analog system.
- the system may have components such as a processor, storage media, memory, input, output, communications link (wired, wireless, pulsed mud, optical or other), user interfaces, software programs, signal processors (digital or analog) and other such components (such as resistors, capacitors, inductors and others) to provide for operation and analyses of the apparatus and methods disclosed herein in any of several manners well- appreciated in the art.
- teachings may be, but need not be, implemented in conjunction with a set of computer executable instructions stored on a computer readable medium, including memory (ROMs, RAMs), optical (CD-ROMs), or magnetic (disks, hard drives), or any other type that when executed causes a computer to implement methods of the present invention.
- ROMs, RAMs random access memory
- CD-ROMs compact disc-read only memory
- magnetic (disks, hard drives) any other type that when executed causes a computer to implement methods of the present invention.
- These instructions may provide for equipment operation, control, data collection and analysis and other functions deemed relevant by a system designer, owner, user or other such personnel, in addition to the functions described in this disclosure.
- Examples include various other components that may be called upon for providing for aspects of the teachings herein, such as: a sample line, sample storage, sample chamber, sample exhaust, pump, piston, power supply (e.g., at least one of a generator, a remote supply and a battery), vacuum supply, pressure supply, motive force (such as a translational force, propulsional force or a rotational force), magnet, electromagnet, sensor, electrode, transmitter, receiver, transceiver, antenna, controller, optical unit, electrical unit or electromechanical unit may be included in support of the various aspects discussed herein or in support of other functions beyond this disclosure.
- a sample line sample storage, sample chamber, sample exhaust, pump, piston, power supply (e.g., at least one of a generator, a remote supply and a battery), vacuum supply, pressure supply, motive force (such as a translational force, propulsional force or a rotational force), magnet, electromagnet, sensor, electrode, transmitter, receiver, transceiver, antenna, controller, optical unit, electrical unit or electromechanical unit may
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| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| BRPI1012998A BRPI1012998A2 (en) | 2009-05-20 | 2010-05-20 | "Methods and apparatus for providing complementary resistivity and separation distance imaging" |
| GB1120352.8A GB2482822B (en) | 2009-05-20 | 2010-05-20 | Methods and apparatus for providing complimentary resistivity and standoff image |
| NO20111611A NO20111611A1 (en) | 2009-05-20 | 2011-11-22 | Methods and devices for obtaining resistivity and standoff images |
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| Application Number | Priority Date | Filing Date | Title |
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| US17999809P | 2009-05-20 | 2009-05-20 | |
| US61/179,998 | 2009-05-20 | ||
| US23584309P | 2009-08-21 | 2009-08-21 | |
| US61/235,843 | 2009-08-21 |
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| WO2010135554A2 true WO2010135554A2 (en) | 2010-11-25 |
| WO2010135554A3 WO2010135554A3 (en) | 2011-03-03 |
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| EP2626507A1 (en) | 2011-12-22 | 2013-08-14 | Services Pétroliers Schlumberger | Method and system for calibrating a downhole imaging tool |
| US9212546B2 (en) | 2012-04-11 | 2015-12-15 | Baker Hughes Incorporated | Apparatuses and methods for obtaining at-bit measurements for an earth-boring drilling tool |
| US9394782B2 (en) | 2012-04-11 | 2016-07-19 | Baker Hughes Incorporated | Apparatuses and methods for at-bit resistivity measurements for an earth-boring drilling tool |
| US9605487B2 (en) | 2012-04-11 | 2017-03-28 | Baker Hughes Incorporated | Methods for forming instrumented cutting elements of an earth-boring drilling tool |
| US20130342211A1 (en) * | 2012-06-26 | 2013-12-26 | Schlumberger Technology Corporation | Impedance Spectroscopy Measurement Device And Methods For Analysis Of Live Reservoir Fluids And Assessment Of In-Situ Corrosion Of Multiple Alloys |
| US10954779B2 (en) * | 2014-04-08 | 2021-03-23 | Halliburton Energy Services, Inc. | Borehole wall imaging tool having a grooved wall-contacting face |
| US11530605B2 (en) * | 2015-03-13 | 2022-12-20 | The Charles Machine Works, Inc. | Horizontal directional drilling crossbore detector |
| EP3176610A1 (en) | 2015-12-04 | 2017-06-07 | Services Pétroliers Schlumberger | Method and system for formation texture and rock type identification |
| MX2020003072A (en) | 2017-10-31 | 2020-07-28 | Halliburton Energy Services Inc | Processing resistivity images in wells with oil based muds. |
| US20210189836A1 (en) * | 2018-06-08 | 2021-06-24 | Halliburton Energy Services, Inc. | Multi-location virtual collaboration, monitoring, and control |
| US11180989B2 (en) | 2018-07-03 | 2021-11-23 | Baker Hughes Holdings Llc | Apparatuses and methods for forming an instrumented cutting for an earth-boring drilling tool |
| US10584581B2 (en) | 2018-07-03 | 2020-03-10 | Baker Hughes, A Ge Company, Llc | Apparatuses and method for attaching an instrumented cutting element to an earth-boring drilling tool |
| US11249217B2 (en) | 2018-11-15 | 2022-02-15 | Halliburton Energy Services, Inc. | Method for resistivity determination with borehole imagers |
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|---|---|---|---|---|
| US4692908A (en) * | 1982-03-24 | 1987-09-08 | Schlumberger-Doll Research | Method and apparatus for investigating stand-off in a borehole |
| US7073378B2 (en) * | 2003-08-07 | 2006-07-11 | Schlumberger Technology Corporation | Integrated logging tool for borehole |
| US7260477B2 (en) * | 2004-06-18 | 2007-08-21 | Pathfinder Energy Services, Inc. | Estimation of borehole geometry parameters and lateral tool displacements |
| US7397250B2 (en) * | 2004-11-12 | 2008-07-08 | Baker Hughes Incorporated | High resolution resistivity earth imager |
| US7277796B2 (en) * | 2005-04-26 | 2007-10-02 | Schlumberger Technology Corporation | System and methods of characterizing a hydrocarbon reservoir |
| US20100148787A1 (en) * | 2005-06-20 | 2010-06-17 | Marian Morys | High Frequency or Multifrequency Resistivity Tool |
| US7385401B2 (en) * | 2005-07-08 | 2008-06-10 | Baker Hughes Incorporated | High resolution resistivity earth imager |
| EP1795921B1 (en) * | 2005-12-06 | 2013-01-23 | Services Petroliers Schlumberger | Determination of porosity and fluid saturation of underground formations |
| US7657375B2 (en) * | 2006-04-26 | 2010-02-02 | Baker Hughes Incorporated | Method and apparatus for correcting underestimation of formation anisotropy ratio |
| US7778778B2 (en) * | 2006-08-01 | 2010-08-17 | Baker Hughes Incorporated | Correction of multi-component measurements for tool eccentricity in deviated wells |
| US7902827B2 (en) * | 2006-09-19 | 2011-03-08 | Baker Hughes Incorporated | Method and apparatus for combined induction and imaging well logging |
| US7689363B2 (en) * | 2007-05-15 | 2010-03-30 | Baker Hughes Incorporated | Dual standoff resistivity imaging instrument, methods and computer program products |
| US8060309B2 (en) * | 2008-01-29 | 2011-11-15 | Baker Hughes Incorporated | Characterization of fracture length and formation resistivity from array induction data |
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- 2010-05-20 BR BRPI1012998A patent/BRPI1012998A2/en not_active IP Right Cessation
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| GB2482822B (en) | 2014-01-15 |
| GB201120352D0 (en) | 2012-01-04 |
| GB2482822A (en) | 2012-02-15 |
| US20100295548A1 (en) | 2010-11-25 |
| BRPI1012998A2 (en) | 2018-01-16 |
| NO20111611A1 (en) | 2011-11-30 |
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