Time-frequency three-dimensional comprehensive electrical method detection system and material method
By effectively processing the electric field and magnetic field amplitude in the time-frequency three-dimensional integrated electrical detection system, the problem of environmental noise affecting detection accuracy is solved, and high accuracy and reliability underground medium detection under different environmental conditions is achieved.
Patent Information
- Application Number
- CN202510191445.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-20
- Publication Date
- 2025-05-13
- Estimated Expiration
- 2045-02-20
AI Technical Summary
During the actual detection process of the existing time-frequency three-dimensional integrated electrical method detection system, due to the influence of environmental noise, the electric field strength and magnetic field length change, affecting the accuracy of apparent resistivity, and thus affecting the detection accuracy of underground media.
A time-frequency three-dimensional integrated electrical method detection system is designed, including a transmitting device, a receiving device, a data processing module and a three-dimensional electrode arrangement module. By effectively processing the electric field and magnetic field amplitude, the interference of environmental noise is reduced and the accuracy and reliability of measurement results under different environmental conditions are ensured.
The system can maintain good accuracy and reliability under different environmental conditions. It is suitable for complex environments such as cities and wild areas, improving the accuracy and reliability of underground media detection and enhancing the practical application value.
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Figure CN119986818A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of underground material detection, and in particular to a time-frequency three-dimensional integrated electrical detection system and a material method. Background Art
[0002] The basic principle of the time-frequency three-dimensional integrated electrical method is to use the propagation characteristics of electromagnetic signals of different frequencies in the underground medium, and to infer the structure and properties of the underground medium by measuring and analyzing the response of these signals in the underground medium. This method combines time-frequency analysis technology with three-dimensional electrical exploration methods and can provide richer underground information.
[0003] Among them, time-frequency analysis technology is a method that converts a one-dimensional time signal into a two-dimensional function of time-frequency to describe the time-varying frequency characteristics of a signal or system. In the three-dimensional time-frequency integrated electrical method, time-frequency analysis technology is used to process and analyze the received electromagnetic signals to extract information about the underground medium; three-dimensional electrical exploration is a method that forms a three-dimensional electric field by arranging multiple electrodes underground and measuring the electric field distribution to infer the structure and properties of the underground medium. In the three-dimensional time-frequency integrated electrical method, the three-dimensional electrical exploration technology is used to obtain the three-dimensional resistivity distribution of the underground medium.
[0004] The existing time-frequency three-dimensional integrated electrical detection system still has some defects. For example, during the actual detection process, the influence of environmental noise will cause the electric field strength and magnetic field length to change, which will affect the accuracy of the apparent resistivity and ultimately affect the detection accuracy of the underlying medium. Summary of the invention
[0005] The purpose of the present invention is to provide a time-frequency three-dimensional integrated electrical detection system and material method to solve the above technical problems.
[0006] The purpose of the present invention can be achieved through the following technical solutions:
[0007] A time-frequency three-dimensional integrated electrical detection system, comprising:
[0008] A transmitting device, used to transmit a time-frequency electromagnetic signal in a target area, wherein the time-frequency electromagnetic signal has a predetermined frequency distribution range and component type;
[0009] A receiving device is arranged around or inside the target area, and is used to receive the time-frequency electromagnetic signal transmitted by the transmitting device and propagated through the target area, and collect the measuring point data on the measuring line, wherein the measuring point data includes amplitude data and phase data;
[0010] A data processing module is used to process the measuring point data collected by the receiving device, determine the equivalent apparent resistivity of the whole field area of the measuring points on the measuring line according to the amplitude data and the phase data, and further determine the geological structure characteristics of the target area according to the equivalent apparent resistivity of the whole field area;
[0011] A three-dimensional electrode arrangement module is used to arrange multiple electrodes around or inside the target area to form a three-dimensional electric field, wherein the electrodes include a ground electrode group and an in-hole electrode group, wherein the ground electrode group is arranged in a grid shape, and the in-hole electrode group arranges an electrode string in each borehole, and the electrode string is composed of a plurality of electrodes with fixed spacing;
[0012] The synchronous observation control module is used to control the transmitting device, the receiving device and the three-dimensional electrode arrangement module to realize synchronous electrical observation of multiple holes and the ground.
[0013] As a further technical solution, the transmitting device includes a signal generator, a power amplifier and a transmitting antenna. The signal generator is used to generate an electrical signal with a predetermined frequency distribution range and component type; the power amplifier is used to amplify the electrical signal generated by the signal generator; and the transmitting antenna is used to convert the amplified electrical signal into a time-frequency electromagnetic signal and transmit it to a target area.
[0014] As a further technical solution, the receiving device includes an electric field sensor, a magnetic field sensor and a data acquisition card. The electric field sensor and the magnetic field sensor are used to receive time-frequency electromagnetic signals and convert the signals into electrical signals to obtain amplitude data and phase data. The potential sensor is used to measure the potential data of the measuring point. The data acquisition card is used to collect and digitize the above-mentioned electrical signals and potential data to obtain the measuring point data.
[0015] As a further technical solution, the data processing module includes:
[0016] A data preprocessing unit, used for filtering and denoising the measurement point data collected by the receiving device;
[0017] The apparent resistivity calculation unit is used to calculate the pre-processed amplitude data and phase data through the formula:
[0018]
[0019] Calculate the equivalent apparent resistivity P of the entire field area of the measuring point on the measuring line s ;
[0020] Wherein, α is the angular frequency, α=2πf, f is the frequency of the transmitted signal, μ is the magnetic permeability, K is the amplitude of the electric field strength, obtained from the amplitude data collected by the receiving device, Y is the amplitude of the magnetic field strength, obtained from the amplitude data collected by the receiving device, is the average phase obtained from multiple measurements;
[0021] The geological structure inversion unit is used to determine the geological structure characteristics of the target area using a three-dimensional inversion algorithm based on the equivalent apparent resistivity of the entire field area and the potential data of the measuring points.
[0022] As a further technical solution, the process of obtaining the amplitude K of the electric field strength and the amplitude Y of the magnetic field strength is as follows:
[0023] Continuously measure and obtain the electric field strength E collected by the receiving device when the transmitting device is not working for n times A With magnetic field strength H A
[0024] Continuously measure and obtain the additional electric field strength E caused by environmental factors collected by the receiving device when the transmitting device is working for n times B With the additional magnetic field strength H B ;
[0025] By formula: The amplitude K of the electric field strength is calculated;
[0026] By formula: The amplitude K of the electric field strength is calculated;
[0027] Where i is the i-th measurement.
[0028] As a further technical solution, the data processing module further includes:
[0029] The potential calculation subunit is used to calculate the potential data after preprocessing and the electrode arrangement parameters, wherein the electrode arrangement parameters include: the electrode position (x ρ ,y ρ ,z ρ ), the total number of electrodes M; by the formula:
[0030]
[0031] Calculate and obtain the potential V(x,y,z) at the current measuring point p(x,y,z);
[0032] Among them, U is the resistivity of the medium, I ρ is the current of the ρth electrode, g ρ is the distance from the current measuring point p(x,y,z) to the ρth electrode (x ρ ,y ρ ,z ρ ) distance.
[0033] As a further technical solution, the calculated measuring point potential V(x, y, z) is compared with the actual measured measuring point potential V o Substitute (x, y, z) into the following formula;
[0034]
[0035] Calculate the error coefficient
[0036] Among them, δ1, δ2, δ3 are weight coefficients, v is the calculated deviation value of the measuring point potential per unit time, and v0 is the actual measured deviation value of the measuring point potential per unit time;
[0037] The calculated error coefficient With error threshold Make comparisons;
[0038] like It is judged that there is an error in the measurement data and calibration is required.
[0039] As a further technical solution, the calculation formula for the calculated deviation value v of the measuring point potential per unit time is:
[0040] The calculation formula of the deviation value v0 of the potential of the measuring point obtained by the actual measurement in unit time is:
[0041] Among them, V(x,y,z)(t) is the calculated curve of the potential change of the measuring point over time, V o (x, y, z)(t) is the curve of the potential change of the measuring point with time obtained by actual measurement, t l ~t l+1 As unit time, V o (x,y,z) th (t), V(x,y,z) th (t) is the reference change curve.
[0042] A method for detecting materials using a three-dimensional time-frequency integrated electrical method is implemented based on the three-dimensional time-frequency integrated electrical method detection system.
[0043] Beneficial effects of the present invention:
[0044] The present invention takes into account the influence of environmental factors on the measurement results, and through the effective processing of the electric field and magnetic field amplitudes, it can maintain good accuracy and reliability under different environmental conditions; it can be used in strong electromagnetic interference areas such as cities, as well as in areas with complex natural environments such as the wild, thereby enhancing the practical application value. BRIEF DESCRIPTION OF THE DRAWINGS
[0045] The present invention will be further described below in conjunction with the accompanying drawings.
[0046] Figure 1 It is a system structure block diagram of the present invention. DETAILED DESCRIPTION
[0047] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0048] See also Figure 1 As shown, the present invention is a time-frequency three-dimensional integrated electrical detection system, comprising:
[0049] A transmitting device, used to transmit a time-frequency electromagnetic signal in a target area, wherein the time-frequency electromagnetic signal has a predetermined frequency distribution range and component type;
[0050] A receiving device is arranged around or inside the target area, and is used to receive the time-frequency electromagnetic signal transmitted by the transmitting device and propagated through the target area, and collect the measuring point data on the measuring line, wherein the measuring point data includes amplitude data and phase data;
[0051] A data processing module is used to process the measuring point data collected by the receiving device, determine the equivalent apparent resistivity of the whole field area of the measuring points on the measuring line according to the amplitude data and the phase data, and further determine the geological structure characteristics of the target area according to the equivalent apparent resistivity of the whole field area;
[0052] A three-dimensional electrode arrangement module is used to arrange multiple electrodes around or inside the target area to form a three-dimensional electric field. The electrodes include a ground electrode group and an in-hole electrode group. The ground electrode group is arranged in a grid shape. The in-hole electrode group arranges an electrode string in each borehole. The electrode string is composed of a number of electrodes with fixed spacing. For example, on the ground of the target area, the ground electrode group is arranged according to a grid spacing of 10 meters × 10 meters. At the same time, multiple suitable locations are selected in the target area for drilling. An electrode string is arranged in each borehole, and the electrode spacing on the electrode string is set to 5 meters.
[0053] Synchronous observation control module, used to control the transmitter, receiver and three-dimensional electrode arrangement module to achieve synchronous electrical observation of multiple holes and the ground. Clock synchronization technology can be used to ensure that the transmitter, receiver and three-dimensional electrode arrangement module can work accurately and synchronously;
[0054] The transmitting device includes a signal generator, a power amplifier and a transmitting antenna. The signal generator is used to generate an electrical signal with a predetermined frequency distribution range and component type; the power amplifier is used to amplify the electrical signal generated by the signal generator; and the transmitting antenna is used to convert the amplified electrical signal into a time-frequency electromagnetic signal and transmit it to a target area.
[0055] The receiving device includes an electric field sensor, a magnetic field sensor and a data acquisition card. The electric field sensor and the magnetic field sensor are used to receive time-frequency electromagnetic signals and convert the signals into electrical signals to obtain amplitude data and phase data. The potential sensor is used to measure the potential data of the measuring point. The data acquisition card is used to collect and digitize the above-mentioned electrical signals and potential data to obtain the measuring point data.
[0056] In this embodiment, the use of time-frequency electromagnetic signals combined with the three-dimensional electrode arrangement to construct a three-dimensional electric field can detect underground geological conditions in all directions and from multiple angles. The receiving device collects multiple types of measurement point data such as amplitude, phase and potential. The data processing module deeply analyzes these data to accurately determine the equivalent apparent resistivity of the entire field area, and then clearly outlines the characteristics of the underground geological structure, such as stratification, fault location, and vein direction, which can be accurately presented, providing detailed and reliable geological information for mineral exploration; at the same time, relying on the characteristic changes of time-frequency electromagnetic signals when propagating underground, it can accurately identify geological anomalies with different electrical properties from the surrounding medium, greatly increasing the probability of discovering potential mineral resources and reducing the risk of missed detection.
[0057] The data processing module comprises:
[0058] A data preprocessing unit, used for filtering and denoising the measurement point data collected by the receiving device;
[0059] The apparent resistivity calculation unit is used to calculate the pre-processed amplitude data and phase data through the formula:
[0060]
[0061] Calculate the equivalent apparent resistivity P of the entire field area of the measuring point on the measuring line s ;
[0062] Wherein, α is the angular frequency, α=2πf, f is the frequency of the transmitted signal, μ is the magnetic permeability, K is the amplitude of the electric field strength, obtained from the amplitude data collected by the receiving device, Y is the amplitude of the magnetic field strength, obtained from the amplitude data collected by the receiving device, is the average phase obtained from multiple measurements;
[0063] The geological structure inversion unit is used to determine the geological structure characteristics of the target area using a three-dimensional inversion algorithm based on the equivalent apparent resistivity of the entire field area and the potential data of the measuring point. The three-dimensional inversion algorithm uses one of the least squares inversion method, conjugate gradient method, simulated annealing algorithm and genetic algorithm. The above algorithms are all existing technologies and can be directly obtained by those skilled in the art, so they will not be described in detail here.
[0064] The process of obtaining the amplitude K of the electric field strength and the amplitude Y of the magnetic field strength is as follows:
[0065] Continuously measure and obtain the electric field strength E collected by the receiving device when the transmitting device is not working for n times A With magnetic field strength H A
[0066] Continuously measure and obtain the additional electric field strength E caused by environmental factors collected by the receiving device when the transmitting device is working for n times B With the additional magnetic field strength H B ;
[0067] By formula: The amplitude K of the electric field strength is calculated;
[0068] By formula: The amplitude K of the electric field strength is calculated;
[0069] Where i is the i-th measurement.
[0070] In this embodiment, a method for obtaining the equivalent apparent resistivity of the entire field area of the measuring point on the measuring line is provided. Specifically, the formula and The amplitude K of the electric field strength and the amplitude K of the electric field strength are calculated respectively; through the above formula, the actual electric field strength E A , magnetic field strength H A The additional electric field strength E caused by environmental factors B 、Extra magnetic field strength H B Calculate the standard deviation. The standard deviation reflects the discreteness of the data. When environmental noise exists, the discreteness of the measured data will increase. Using the standard deviation for processing can reduce the influence of noise on the amplitude calculation, making the obtained electric field strength amplitude and magnetic field strength amplitude closer to the true value. By calculating the standard deviation, the measurement error caused by accidental factors such as instantaneous electromagnetic interference can be reduced, making the calculation results of the electric field strength amplitude and magnetic field strength amplitude more stable and reliable. In actual detection, the environmental conditions are complex and changeable. The above technical solution can enhance the anti-interference ability of the data and ensure the accuracy of the subsequent apparent resistivity calculation.
[0071] Then substitute the calculated amplitude K of the electric field strength and the amplitude K of the electric field strength into the formula: The equivalent apparent resistivity P of the entire field area of the measuring point on the measuring line is calculated. s , the equivalent apparent resistivity of the entire field area is calculated by using the electric field strength and magnetic field strength amplitude processed by standard deviation, which can more accurately reflect the electrical characteristics of the underground medium; since the interference of some environmental noise is eliminated, the calculation result of the apparent resistivity is closer to the real resistivity of the underground medium, which helps to more accurately identify the distribution of underground geological structures and geological bodies, such as faults, ore bodies, etc.;
[0072] It should be noted that the influence of environmental factors on the measurement results is taken into consideration. Through effective processing of the electric field and magnetic field amplitudes, it can maintain good accuracy and reliability under different environmental conditions. It can be used in areas with strong electromagnetic interference such as cities, as well as in areas with complex natural environments such as the wild, thus enhancing its practical application value.
[0073] The data processing module also includes:
[0074] The potential calculation subunit is used to calculate the potential data after preprocessing and the electrode arrangement parameters, wherein the electrode arrangement parameters include: the electrode position (x ρ ,y ρ ,z ρ ), the total number of electrodes M; by the formula:
[0075]
[0076] Calculate and obtain the potential V(x,y,z) at the current measuring point p(x,y,z);
[0077] Among them, U is the resistivity of the medium, I ρ is the current of the ρth electrode, g ρ is the distance from the current measuring point p(x,y,z) to the ρth electrode (x ρ ,y ρ ,z ρ ) distance.
[0078] Compare the calculated measuring point potential V(x,y,z) with the actual measured measuring point potential V o Substitute (x, y, z) into the following formula;
[0079]
[0080] Calculate the error coefficient
[0081] Among them, δ1, δ2, δ3 are weight coefficients, v is the calculated deviation value of the measuring point potential per unit time, and v0 is the actual measured deviation value of the measuring point potential per unit time;
[0082] The calculated error coefficient With error threshold Make comparisons;
[0083] like It is judged that there is an error in the measurement data and calibration is required. The calibration method includes checking the contact resistance between the electrode and the ground. If the contact resistance is too large, the contact between the electrode and the ground is reprocessed.
[0084] The calculation formula for the deviation value v of the potential at the measuring point per unit time is:
[0085] The calculation formula of the deviation value v0 of the potential of the measuring point obtained by the actual measurement in unit time is:
[0086] Among them, V(x,y,z)(t) is the calculated curve of the potential change of the measuring point over time, V o (x, y, z)(t) is the curve of the potential change of the measuring point with time obtained by actual measurement, t l ~t l+1 As unit time, V o (x,y,z) th (t), V(x,y,z) th (t) is the reference change curve.
[0087] In this embodiment, by Calculate the error coefficient Therefore, by using relative error to quantitatively compare the calculated potential and the measured potential, the accuracy of the measured data can be accurately determined. Through quantitative evaluation, small data deviations can be promptly identified to ensure that the subsequent geological analysis based on potential data is based on a reliable data foundation, laying the foundation for high-precision geological exploration. Once the measurement data error is found to exceed the threshold, the measurement system is calibrated in a targeted manner to check the contact resistance between the electrode and the ground, which can solve the signal transmission anomaly caused by poor contact, so that the measurement system is always in the best working state and the stability and reliability of data acquisition are guaranteed.
[0088] At the same time, through the formula: and
[0089] The exponential accumulation of the calculated potential and the measured potential per unit time can more clearly present the error development trend of the measurement system over a longer time span, and determine whether it is gradually stabilizing or there is an increasing error drift, which is of great significance for evaluating the long-term reliability and stability of the system; based on the error trend presented by the exponential accumulation, a certain degree of prediction of future error conditions can be made. If it is found that the error shows an exponential growth trend, measures can be taken in advance, such as strengthening equipment maintenance, optimizing measurement methods, etc., to avoid further expansion of the error and causing the measurement results to lose their meaning, and comprehensively achieve the improvement of the error coefficient. For the purpose of accuracy.
[0090] A method for detecting materials using a three-dimensional time-frequency integrated electrical method is implemented based on the three-dimensional time-frequency integrated electrical method detection system.
[0091] It should be noted that the calculation formulas and various parameters involved in the calculation in the present invention have been dimensionally processed in advance, and the process of dimensionless processing is well known in the industry and will not be described here.
[0092] The above is a detailed description of an embodiment of the present invention, but the content is only a preferred embodiment of the present invention and cannot be considered to limit the scope of implementation of the present invention. All equivalent changes and improvements made within the scope of the present invention should still fall within the scope of the patent coverage of the present invention.
Claims
1. A time-frequency three-dimensional integrated electrical detection system, characterized in that: include: A transmitting device, used to transmit a time-frequency electromagnetic signal in a target area, wherein the time-frequency electromagnetic signal has a predetermined frequency distribution range and component type; A receiving device is arranged around or inside the target area, and is used to receive the time-frequency electromagnetic signal transmitted by the transmitting device and propagated through the target area, and collect the measuring point data on the measuring line, wherein the measuring point data includes amplitude data and phase data; A data processing module is used to process the measuring point data collected by the receiving device, determine the equivalent apparent resistivity of the whole field area of the measuring points on the measuring line according to the amplitude data and the phase data, and further determine the geological structure characteristics of the target area according to the equivalent apparent resistivity of the whole field area; A three-dimensional electrode arrangement module is used to arrange multiple electrodes around or inside the target area to form a three-dimensional electric field, wherein the electrodes include a ground electrode group and an in-hole electrode group, wherein the ground electrode group is arranged in a grid shape, and the in-hole electrode group arranges an electrode string in each borehole, and the electrode string is composed of a plurality of electrodes with fixed spacing; The synchronous observation control module is used to control the transmitting device, the receiving device and the three-dimensional electrode arrangement module to realize synchronous electrical observation of multiple holes and the ground.
2. The time-frequency three-dimensional integrated electrical detection system according to claim 1 is characterized in that: The transmitting device comprises a signal generator, a power amplifier and a transmitting antenna, wherein the signal generator is used to generate an electrical signal having a predetermined frequency distribution range and component type; the power amplifier is used to amplify the electrical signal generated by the signal generator; The transmitting antenna is used to convert the amplified electrical signal into a time-frequency electromagnetic signal and transmit it to the target area.
3. The time-frequency three-dimensional integrated electrical detection system according to claim 1 is characterized in that: The receiving device includes an electric field sensor, a magnetic field sensor and a data acquisition card. The electric field sensor and the magnetic field sensor are used to receive time-frequency electromagnetic signals and convert the signals into electrical signals to obtain amplitude data and phase data. The potential sensor is used to measure the potential data of the measuring point. The data acquisition card is used to collect and digitize the above-mentioned electrical signals and potential data to obtain the measuring point data.
4. The time-frequency three-dimensional integrated electrical detection system according to claim 1 is characterized in that: The data processing module comprises: A data preprocessing unit, used for filtering and denoising the measurement point data collected by the receiving device; The apparent resistivity calculation unit is used to calculate the pre-processed amplitude data and phase data through the formula: Calculate the equivalent apparent resistivity P of the entire field area of the measuring point on the measuring line s ; Wherein, α is the angular frequency, α=2πf, f is the frequency of the transmitted signal, μ is the magnetic permeability, K is the amplitude of the electric field strength, obtained from the amplitude data collected by the receiving device, Y is the amplitude of the magnetic field strength, obtained from the amplitude data collected by the receiving device, is the average phase obtained from multiple measurements; The geological structure inversion unit is used to determine the geological structure characteristics of the target area using a three-dimensional inversion algorithm based on the equivalent apparent resistivity of the entire field area and the potential data of the measuring points.
5. The time-frequency three-dimensional integrated electrical detection system according to claim 4 is characterized in that: The process of obtaining the amplitude K of the electric field strength and the amplitude Y of the magnetic field strength is as follows: Continuously measure and obtain the electric field strength E collected by the receiving device when the transmitting device is not working for n times A With magnetic field strength H A Continuously measure and obtain the additional electric field strength E caused by environmental factors collected by the receiving device when the transmitting device is working for n times B With the additional magnetic field strength H B ; By formula The amplitude K of the electric field strength is calculated; By formula: The amplitude K of the electric field strength is calculated; Where i is the i-th measurement.
6. The time-frequency three-dimensional integrated electrical detection system according to claim 4 is characterized in that: The data processing module also includes: The potential calculation subunit is used to calculate the potential data after preprocessing and the electrode arrangement parameters, wherein the electrode arrangement parameters include: the electrode position (x ρ ,y ρ , z ρ ), the total number of electrodes M; by the formula: Calculate and obtain the potential V(x,y,z) at the current measuring point p(x,y,z); Among them, U is the resistivity of the medium, I ρ is the current of the ρth electrode, g ρ is the distance from the current measuring point p(x,y,z) to the ρth electrode (x ρ ,y ρ , z ρ ) distance.
7. The time-frequency three-dimensional integrated electrical detection system according to claim 6 is characterized in that: Compare the calculated measuring point potential V(x,y,z) with the actual measured measuring point potential V o Substitute (x, y, z) into the following formula; The error coefficient θ is calculated; Among them, δ1, δ2, δ3 are weight coefficients, v is the calculated deviation value of the measuring point potential per unit time, and v0 is the actual measured deviation value of the measuring point potential per unit time; Compare the calculated error coefficient θ with the error threshold θc; If θ ≥ θc, it is judged that there is an error in the measurement data and calibration is required.
8. The time-frequency three-dimensional integrated electrical detection system according to claim 7 is characterized in that: The calculation formula for the deviation value v of the potential at the measuring point per unit time is: The calculation formula of the deviation value v0 of the potential of the measuring point obtained by the actual measurement in unit time is: Among them, V(x,y,z)(t) is the calculated curve of the potential change of the measuring point over time, V o (x, y, z)(t) is the curve of the potential change of the measuring point with time obtained by actual measurement, t l ~t l+1 As unit time, V o (x,y,z) th (t), V(x,y,z) th (t) is the reference change curve.
9. A method for detecting materials by time-frequency three-dimensional integrated electrical method, characterized in that: The method is implemented based on the time-frequency three-dimensional integrated electrical detection system described in any one of claims 1-8.
Citation Information
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