WO2017037536A1 - Apparatus and method for determining earth's near-surface properties with on-time measurements from airborne time-domain electromagnetic data - Google Patents
Apparatus and method for determining earth's near-surface properties with on-time measurements from airborne time-domain electromagnetic data Download PDFInfo
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- WO2017037536A1 WO2017037536A1 PCT/IB2016/001334 IB2016001334W WO2017037536A1 WO 2017037536 A1 WO2017037536 A1 WO 2017037536A1 IB 2016001334 W IB2016001334 W IB 2016001334W WO 2017037536 A1 WO2017037536 A1 WO 2017037536A1
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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
- G01V3/02—Electric or magnetic prospecting or detecting; Measuring magnetic field characteristics of the earth, e.g. declination, deviation operating with propagation of electric current
- G01V3/06—Electric or magnetic prospecting or detecting; Measuring magnetic field characteristics of the earth, e.g. declination, deviation operating with propagation of electric current using AC
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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
- G01V3/36—Recording data
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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
- G01V3/15—Electric or magnetic prospecting or detecting; Measuring magnetic field characteristics of the earth, e.g. declination, deviation specially adapted for use during transport, e.g. by a person, vehicle or boat
- G01V3/16—Electric or magnetic prospecting or detecting; Measuring magnetic field characteristics of the earth, e.g. declination, deviation specially adapted for use during transport, e.g. by a person, vehicle or boat specially adapted for use from aircraft
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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
- G01V3/15—Electric or magnetic prospecting or detecting; Measuring magnetic field characteristics of the earth, e.g. declination, deviation specially adapted for use during transport, e.g. by a person, vehicle or boat
- G01V3/165—Electric or magnetic prospecting or detecting; Measuring magnetic field characteristics of the earth, e.g. declination, deviation specially adapted for use during transport, e.g. by a person, vehicle or boat operating with magnetic or electric fields produced or modified by the object or by the detecting device
-
- 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
- G01V3/15—Electric or magnetic prospecting or detecting; Measuring magnetic field characteristics of the earth, e.g. declination, deviation specially adapted for use during transport, e.g. by a person, vehicle or boat
- G01V3/17—Electric or magnetic prospecting or detecting; Measuring magnetic field characteristics of the earth, e.g. declination, deviation specially adapted for use during transport, e.g. by a person, vehicle or boat operating with electromagnetic waves
Definitions
- Embodiments of the subject matter disclosed herein generally relate to methods and systems for measuring earth's near-surface properties from time- domain electromagnetic (TEM) data and, more particularly, to mechanisms and techniques for detecting the near-surface properties based on TEM on-time measurements.
- TEM time- domain electromagnetic
- Electromagnetic (EM) surveying is a method of geophysical exploration to determine the properties of a portion of the earth's subsurface, information that is especially helpful in the mining industry, the oil and gas industry, as well as having application toward the geotechnical and environmental industries.
- EM surveys may be based on a controlled source that sends primary EM fields into the earth, which induce eddy currents in the earth. The eddy currents generate a secondary EM field or ground response. By measuring the secondary field with an EM receiver, it is possible to estimate the depth and/or composition of the subsurface features. These features may be associated with a wide range of geologic structure or rock types, including subterranean
- an airborne transmitter 102 applies a time-varying current to a coil, which generates a primary time-varying magnetic field 104.
- a frequency-domain electromagnetic (FDEM) method uses the inductive properties of a continuous primary electromagnetic field to measure the conductivity
- electromagnetic field to measure the ground response or resistivity of the material through which the field passes, generally after the primary field is turned off.
- Primary time-varying magnetic field 104 when entering the ground 106, according to Faraday's Law, induces an electromotive force 108 (EMF, or potential) and an electric field 1 10 in the ground.
- EMF electromotive force
- the induced potential causes a current 1 12 to flow in the ground 106.
- the current 1 12 and electric field 1 10 diffuse (in most geologic situations) laterally outward and vertically downward. Due to the resistive nature of the ground, the current 1 12 and electric field 1 10 decay in amplitude.
- the secondary magnetic field 1 14 associated with these currents is sensed by a receiver 1 16 or, the time-variation of the magnetic field is sensed by a receiver 1 16.
- Transmitter 102 and receiver 1 16 may be connected to an aircraft 1 18 so that a large area of the ground is swept.
- an induction response is the response from a layered earth containing conductive material and is typically defined to have a positive polarity as measured by a vertical coil receiver.
- the secondary magnetic field or its time variation is the desired
- Figure 2A shows the current 200 in the transmitter 102 during the on-time period 202. It is noted that the current 200 is constant, with a turn-on phase 204 and a turn-off phase 206. Following the on-time period 202, the current is off, i.e., the off-time period 208 follows. The current 200 is then applied again during a next on-time period 210, but with an inverted sign.
- Figure 2B shows the induced EMF force corresponding to the on- and off-times and Figure 2C indicates that the secondary field measurements take place during the off-time period 208.
- the measurements are sampled during plural decay-time-windows as illustrated in Figure 2C, which are called gates.
- the gates may be arranged with a logarithmically increasing width to improve the signal/noise ratio.
- Approximate data transform algorithms provide a rapid method of imaging airborne electromagnetic data collected during the off-time period 208.
- these methods determine a resistivity or conductivity parameter (electrical properties herein) and use the delay time/frequency to estimate the depth at which that parameter should be plotted (see e.g., Huang, H. and Fraser, D., 1996.
- the depth for frequency domain methods is related to the skin-depth of each frequency.
- Time domain methods have estimated the effective depth through various methods, for example by using image theory for thin sheets (e.g., Macnae, J., & Lamontagne, Y., 1987, Imaging quasi-layered conductive structures by simple processing of transient electromagnetic data, Geophysics, 52(4), 545-554) or diffusion depth of the electric field in a
- One or more of the embodiments discussed herein illustrate how to the record magnetic related data, generated by the earth as a result of a transient primary magnetic field, for being able to calculate electrical properties of the earth with a better accuracy.
- the method includes selecting a waveform having multiple current transition rates; placing a time- domain electromagnetic (TEM) system above the underground formation while generating with a transmitter a transient primary magnetic field during an on-time period and no magnetic field during a following off-time period, due to the waveform; and recording with a receiver magnetic related data generated by the earth as a result of the transient primary magnetic field.
- the receiver records the magnetic related data during the on-time period using plural on-time gates sampling.
- the TEM system includes a controller for receiving a waveform having multiple current transition rates; a transmitter for generating a transient primary magnetic field during an on-time period and no magnetic field during a following off-time period, when the waveform is applied to the transmitter; and a receiver for recording magnetic related data generated by the earth as a result of the transient primary magnetic field.
- the receiver records the magnetic related data during the on-time period using plural on-time gates sampling.
- non-transitory computer readable medium including computer executable instructions, wherein the instructions, when executed by a processor, implement instructions for calculating electrical properties of a surveyed underground formation as noted above.
- Figure 1 is a schematic diagram of a TEM acquisition system
- Figures 2A-2C illustrate the current, EMF and measured secondary magnetic field (during off-time) for an airborne TEM acquisition system
- Figure 3A illustrates a current waveform having multiple different current transition rates and Figure 3B illustrates a response recorded by a receiver in response to the current waveform of Figure 3A;
- Figures 4A-4F illustrate current distributions in near-surface for selected times during the segment of the current waveform of Figure 3A, where the current is increasing;
- Figures 5A-5F illustrate current distributions in near-surface during a portion of the current waveform of Figure 3A, where the current is decreasing in amplitude
- Figures 6A-6F illustrate current distributions in near-surface for an off- time period of the current waveform of Figure 3A;
- Figure 7 illustrates a waveform having multiple different current transition rates and areas where the rate of change is varying discontinuously;
- Figure 8 illustrates a waveform having multiple different current transition rates and a continuously varying rate of change;
- Figure 9 illustrates a waveform having multiple identical current transition rates
- Figure 10 is a flowchart of a method for recording magnetic related data with a TEM system driven with a waveform having multiple current transition rates
- Figure 1 1 illustrates a TEM system
- Figure 12 is a schematic illustration of a controller
- Figure 13 is a flowchart of a method for recording magnetic related data during an on-time period of a TEM system.
- the diffusion pattern for a half-sine waveform is calculated and analyzed.
- the current distribution is estimated during the transmitter's on-time period, which appears to be concentrated near-surface compared to the current distribution during the off-time period.
- Resistivity look-up tables can be generated for both the on-time and the off-time periods by calculating the EM secondary response for a wide range of homogenous half-space resistivity values.
- a number of authors have derived the expression to calculate the electric field in a layered earth due to a vertical dipole, including Morrison et al.
- Electromagnetic response of a large circular loop source on a layered earth A new computation method. Pure and Applied Geophysics, 162, 181 -200).
- ⁇ ⁇ ⁇ is the azimuthally circulating electric field in the topmost layer of the ground
- ⁇ is the angular frequency in radians
- ⁇ is magnetic permeability of the layer
- h is the transmitter elevation
- z is the depth in the layer
- r is the horizontal distance from the transmitter
- J 0 is the Bessel function of order 0
- ⁇ is the Hankel transform integration variable.
- the electric field is convolved with the time-derivative of the transmitter current l(t) using the expression
- P is the impulse response and E s is the step-response of the half-space.
- a transmitter was placed 30 m above the surface of the earth and a half-sine waveform 300 has been applied to the transmitter.
- the sine waveform 300 has a 4 ms pulse width and a current of 1 ,400 A as illustrated in Figure 3A.
- Waveform 300 has a transition point 301 and an end point 303. After end point 303, waveform 300 is zero (during the off-time period).
- the primary field 302 at the receiver which measures the time rate of change of the magnetic field, is a half-cosine as shown in Figure 3B.
- FIG. 4A-F illustrate the current density normalized by the maximum current density at that time, for a corresponding depth (on the Y axis) and a corresponding distance from the transmitter (on the X axis).
- the figures show contours 400, 402, 404 and 406 corresponding to 10%, 25%, 50% and 90% of the maximum current density.
- the figures show the current density at delay times of 10, 20, 40, 50, 75 and 100 ps from the turn-on at time 0(see Figure 3A) of the half- sine waveform 300.
- induction is positive from 0 to 2 ms, negative from 2 to 4 ms and 0 afterward.
- Each Figure 4A-4F also shows contours 408 and 410 of the normalized current density of a step response (square wave) (i.e., traditional arrangement illustrated in Figures 2A-2C) at a same delay time from the start point (zero in Figure 3A) in the half-sine waveform (i.e., each figure shows step-off current density 408 and 410 at delay times of 10, 20, 40, 50, 75 and 100 s).
- Step-off current density contour 408 corresponds to 90% and current density contour 410 corresponds to 10% of the maximum current density.
- Figures 4A-4F show the up-ramp phase of the half-sine waveform 300 (time interval between 0 and 2 ms), Figures 5A-5F show the down-ramp interval (from 2 to 4 ms) and Figures 6A-6F show the current density during the off-time.
- the off-time current density is most similar to the step-off studies in the literature. As shown in Figures 6A-6F, the current density resembles a smoke-ring with the current maximum diffusing downward and outward. At early times, the current from the half-sine has diffused considerably further than the perfect step-off waveform; the 10% contour 410 of the step-off is at the same depth as the 50% contour 404 of the half-sine. For later times, the difference in depth is less
- Figures 4A-4F show that at a short time after the turn-on of the half-sine waveform 300, the current is concentrated near-surface (the induced current density has opposite sign to the EM induction). Notice that during the up-ramp, the current system is little changed from 10 s to 100 s; even just before 2 ms, the 10% contour is shallower than 100 m (not shown). The current distribution 10 s after the start of the pulse ( Figures 4A-4F) is much more concentrated near-surface than at 10 s after the end of the pulse in Figure 6A. This means that in this moderately conductive half-space, during the up-ramp, all the current that diffuses away is immediately replaced at surface by the continuing primary induction.
- Figures 5A-5F show the current density at selected times from the midpoint 301 of the waveform 300 toward the end point 303 of the waveform (the down- ramp).
- the primary excitation is 0 (as shown in Figure 3B, the receiver waveform).
- the induction is zero, no new current is being generated at the surface.
- a short time later (10 s) new current is generated at the surface, and the current induced from the up-ramp is still visible (with opposite sign as denoted by thinner lines).
- the total induced current at surface has smaller amplitude than the up-ramp case because the primary induction is smaller and the residual current from the up-ramp must be overcome.
- the current is concentrated at the surface during the on-time of the half-sine waveform 300. This is because the continuing induction replaces the current at the surface that diffuses away. This analysis suggests that on-time measurements are much more relevant for near-surface layers than off-time measurements, even for systems that have very fast turn-off ramps.
- the waveform employs multiple different current transition rates and varying transition rates.
- Figure 7 shows a waveform 700 having multiple different current transitions and multiple different current transition rate of changes (e.g., current rate of change for portion G1 is different from the current rate of change for portion G2) 700A-700G.
- Figure 7 also shows areas where the rate of change is varying discontinuously, e.g., at times T2, T3, T4 or T5.
- the multiple current transition rate of changes may be identical.
- the waveform may be constructed to have multiple slopes, that is, sections with different slopes, or start-stops (where the slope is one value, then switched to zero, then sloped again) because it is desirable, from a signal-to- noise perspective, to measure the response from the ground after large changes in the slope of the current.
- a current transition is any portion of a waveform for which the amplitude of the current changes in time, and a current transition rate is considered in the following to be the rate of change in time for any portion of the waveform 700.
- portions 710A- 71 OF in Figure 7 are portions of the waveform 700 that do not change in time, i.e., they are constant in time or, in other words, there are no current transitions and no current transition rates.
- portions 710A-710F do not represent current transition rates.
- one current transition rate 700A may be different from another current transition rate 700B, if their slopes (or rates) are not the same.
- Figure 7 shows multiple different current transitions having multiple different current transition rates 700-700G.
- Figure 8 shows a waveform 800 having multiple different current transition rates 800A-800C that continuously vary. Note that in Figure 7, because of the constant current portions 710A-710F, the multiple current transition rates 700A- 700G do not vary in a continuous way (i.e., there is a jump between current transition rates 700A and 700B). In one embodiment, there are different slopes for different portions of the waveform (note that Figure 7 is not at scale and thus it may appear that Figure 7 shows the slopes of the different portions to be the same).
- Figure 9 shows multiple identical current transition rates 900A-C that continuously vary except for the transition point 901 . Those skilled in the art would know that other waveforms may be used as long as they show two or more current transition rates.
- the TEM system is configured to measure near-surface conductivity or resistivity using many on-time gates sampling throughout the on-time of the waveform. For example, as illustrated in Figure 7, on-time gates G1 to G3 (only three gates are shown for simplicity, but the number of gates is 5 or higher) are selected during current transitions. This selection ensures that the measurements capture most or all of the shallow information content generated during the on-time of the waveform.
- waveform 700 in Figure 7 or waveform 800 in Figure 8 has multiple different current transition rates
- EMF electromotive force
- the varying EMF results in different current distributions in the ground and the system having a different near- surface sensitivity at different points during the on-time period.
- waveform 800 uses a continuously varying slope (one example is a half-sine waveform)
- the EMF force is continuously varying during the on-time of the TEM system.
- the continuously varying EMF results in different current distributions in the ground and the system having different near-surface sensitivity at different points in the on-time.
- a waveform to be applied to the transmitter of the TEM device is selected in step 1000. This selection may be performed by the controller itself, depending on the conditions of the survey, or it may be performed by the survey's operator and entered into the controller through a dedicated interface.
- TEM device 1 100 is shown in Figure 1 1 as including a transmitter 1 102 and a receiver 1 104 located on a carrier element 1 106. Carrier element 1 106 may include multiple parts and it may be attached to an aircraft (not shown).
- a controller 1 108 controls the application of the selected waveform to the transmitter.
- TEM device 1 100 may also have a power source 1 1 10, which provides the current to the transmitter. Power source 1 1 10 output may be controlled by controller 1 108.
- Controller 1 108 may include a storage element 1 1 12, for storing the data collected by the receiver 1 104.
- the selected waveform (see examples in Figures 7-9) has two or more current transition rates. In one application, the waveform has multiple different current transition rates. In another application, the waveform has multiple different current transition rates and continuously varying transition rates. The waveform has an on-time period and an off-time period.
- step 1002 the selected waveform is applied by the controller 1 108 to the transmitter 1 102.
- the primary magnetic field is thus generated by the
- the controller is configured in step 1004 to record the data, i.e., magnetic related data due to the eddy currents.
- the controller is configured to select (or calculate or establish or determine) on-time gates for the receiver 1 104, for recording the secondary magnetic fields, or their variations.
- the number of on-time gates can be between 5 and 10,000.
- the waveform's on-time and off- time periods last together for 16.667 ms, with the on-time being 4 ms and the off-time being 12 ms. 2,000 measurements may be made during the 16 ms, which are grouped into 30 channels.
- the data is gated differently, i.e., channel 1 could be data points 14-20 or could be data points 10-100.
- channel 1 could be data points 14-20 or could be data points 10-100.
- This is an illustrative example and those skilled in the art would understand that many more measurements may be made.
- This is a function of the data acquisition system used. For example, it is possible to sample at 122 kHz, 2 MHz or even higher rates. Four channels may be during the on-time and the remaining 26 channels may be during the off-time. Note that other configurations may be possible.
- the width of the selected on-time gates varies, e.g., increasing with time.
- the selected gates are applied to the data collected by the receiver.
- the data is typically magnetic field information, e.g., the value of the magnetic field or variations of the magnetic field, or value of the components of the magnetic field, etc. Note that this method does not exclude recording the data during the off-time.
- the method discussed above indicates that more sensitivity for the near-surface electrical properties of the earth are achieved by using on-time measurements for a waveform that has multiple current transition rates instead of using off-time measurements.
- the TEM system has many on-time gates with relatively dense samplings during current transitions (where the primary field amplitude changes).
- the current's distribution in the ground is relatively near-surface.
- the current distribution at different times is shallower than at corresponding times after the termination of the transmitter current.
- the distribution of the current in the ground determines the depth-sensitivity of the associated magnetic field readings at the receiver.
- the transition points can be visualized by calculating the time-derivative of the current waveform.
- the first time derivative shows the primary EMF.
- the second time-derivative shows segments where the primary EMF is changing rapidly and may indicate where gates should be densely placed.
- a conductivity- depth algorithm may be created to determine a conductivity section of the earth from the recorded magnetic field information.
- the equivalent-filament method can be used to approximate a depth of investigation.
- the equivalent- filament model depth can be estimated from knowledge of how the currents diffuse into the earth.
- a time-weighted integration of the time-domain diffusion depth or penetration depth can be used to determine the depth of investigation.
- Controller 1200 (which may correspond to controller 1 108 in Figure 1 1 ) includes a processor 1202 that is connected through a bus 1204 to a storage device 1206. Controller 1200 may also include an input/output interface 1208 through which data can be exchanged with the processor and/or storage device. For example, a keyboard, mouse or other device may be connected to the input/output interface 1208 to send commands to the processor and/or to collect data stored in storage device or to provide data necessary to the processor.
- the processor may be used to process, for example, the signals collected during the survey. Results of this or another algorithm may be visualized on a screen 1210. For example, the electrical properties of the earth measured as noted in the method described in Figure 1 1 may be used to generate an image of the surveyed subsurface.
- the method includes a step 1300 of selecting a waveform having multiple different current transition rates, a step 1302 of placing (e.g., flying or fixedly attaching to the ground) a TEM system above the underground formation while generating with a transmitter a transient primary magnetic field during an on-time period and no magnetic field during a following off-time period, due to the waveform, and a step 1304 of recording with a receiver magnetic related data generated by the earth as a result of the transient primary magnetic field.
- the receiver records the magnetic related data during the on-time period using plural on-time gates sampling.
- the waveform has continuously varying current transition rates.
- the waveform has multiple different current transitions.
- the waveform is part of a sine function.
- the waveform has a continuously varying slope.
- the on-time gates may have a width that varies in time. For example, it is possible that the width of the on-time gates increases in time.
- the method may also include a step of recording with the receiver the magnetic related data during the off-time period, and/or a step of generating an image of the surveyed underground formation based on the recorded magnetic related data. The off-time period is followed by another on-time period. There are numerous methods used by those skilled in the art to calculate electrical properties from magnetic related data.
- the exemplary embodiments may take the form of an entirely hardware embodiment or an embodiment combining hardware and software aspects. Further, the exemplary embodiments may take the form of a computer program product stored on a computer-readable storage medium having computer-readable instructions embodied in the medium. Any suitable computer-readable medium may be utilized, including hard disks, CD-ROMs, digital versatile discs (DVD), optical storage devices or magnetic storage devices such as a floppy disk or magnetic tape. Other non- limiting examples of computer-readable media include flash-type memories or other known types of memories.
- the disclosed embodiments provide a method and device for determining electrical properties of a surveyed subsurface. These properties may be related to conductivity, resistance, etc. It should be understood that this description is not intended to limit the invention. On the contrary, the exemplary embodiments are intended to cover alternatives, modifications and equivalents, which are included in the spirit and scope of the invention as defined by the appended claims. Further, in the detailed description of the exemplary embodiments
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| Application Number | Priority Date | Filing Date | Title |
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| AU2016314055A AU2016314055A1 (en) | 2015-09-02 | 2016-08-31 | Apparatus and method for determining earth's near-surface properties with on-time measurements from airborne time-domain electromagnetic data |
| US15/738,685 US10520635B2 (en) | 2015-09-02 | 2016-08-31 | Apparatus and method for determining earth's near-surface properties with on-time measurements from airborne time-domain electromagnetic data |
| CA2996023A CA2996023C (en) | 2015-09-02 | 2016-08-31 | Apparatus and method for determining earth's near-surface properties with on-time measurements from airborne time-domain electromagnetic data |
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| US201562213122P | 2015-09-02 | 2015-09-02 | |
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| CN110412656A (en) * | 2019-07-18 | 2019-11-05 | 长江大学 | A kind of method and system that Magnetotelluric Data time-domain pressure is made an uproar |
| US20220035062A1 (en) * | 2020-07-30 | 2022-02-03 | Chengdu University Of Technology | Semi-airborne Time Domain Electromagnetic Exploration System for Unmanned Aerial Vehicle |
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| BR112019005742A2 (en) * | 2016-10-24 | 2019-06-18 | Halliburton Energy Services Inc | method and system for measurements related to oil and gas exploration, and machine readable storage device with instructions stored therein |
| CN111796330A (en) * | 2020-07-13 | 2020-10-20 | 中国科学院地质与地球物理研究所 | Time-frequency joint detection wave synthesis method and device and detection method |
| CN112379449B (en) * | 2020-10-30 | 2023-05-26 | 中国石油天然气集团有限公司 | Processing method and device for electromagnetic data of controllable source |
| CN113625347B (en) * | 2021-09-17 | 2022-07-15 | 中南大学 | Electromagnetic method and system for obtaining resistivity based on horizontal and vertical magnetic fields |
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- 2016-08-31 AU AU2016314055A patent/AU2016314055A1/en not_active Abandoned
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| US10520635B2 (en) | 2019-12-31 |
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| CA2996023C (en) | 2023-12-12 |
| US20180180759A1 (en) | 2018-06-28 |
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