Numerical Simulation Analysis of Difference from a Radial Resistivity Testing Method for Cylindrical Cores and a Conventional Testing Method
Rock resistivity is a major geophysical technical parameter in geological and geotechnical engineering, geothermal prospecting, and oil and gas exploration. Its accurate measurement is of great significance to achieve the goal of “carbon peak and carbon neutrality”. To solve anisotropic problems, a...
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| Published in: | Mathematics (Basel) Vol. 10; no. 16; p. 2885 |
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| Abstract | Rock resistivity is a major geophysical technical parameter in geological and geotechnical engineering, geothermal prospecting, and oil and gas exploration. Its accurate measurement is of great significance to achieve the goal of “carbon peak and carbon neutrality”. To solve anisotropic problems, a method to test the radial resistivity in cylindrical core samples has been proposed and has been deemed the universal method, as it has the virtues of no specially processed sample being needed and nondestructive testing. However, there is still a difference in the radial resistivities obtained from this method and another testing method that is commonly used for cuboid samples. Furthermore, the differences between these methods have not yet been made clear in China or elsewhere. Therefore, we compared the results of the above-two testing methods via numerical simulations after establishing the potential field distribution, and, in combination with their methodological principles, illustrated the differences between the resistivities determined in samples with distinct shapes obtained using the two testing methods, summarized the conditions when there was zero difference and considerable difference when using the two methods, and provided a theoretical basis for the reasonable selection of an appropriate method to test the resistivity anisotropy. |
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| AbstractList | Rock resistivity is a major geophysical technical parameter in geological and geotechnical engineering, geothermal prospecting, and oil and gas exploration. Its accurate measurement is of great significance to achieve the goal of “carbon peak and carbon neutrality”. To solve anisotropic problems, a method to test the radial resistivity in cylindrical core samples has been proposed and has been deemed the universal method, as it has the virtues of no specially processed sample being needed and nondestructive testing. However, there is still a difference in the radial resistivities obtained from this method and another testing method that is commonly used for cuboid samples. Furthermore, the differences between these methods have not yet been made clear in China or elsewhere. Therefore, we compared the results of the above-two testing methods via numerical simulations after establishing the potential field distribution, and, in combination with their methodological principles, illustrated the differences between the resistivities determined in samples with distinct shapes obtained using the two testing methods, summarized the conditions when there was zero difference and considerable difference when using the two methods, and provided a theoretical basis for the reasonable selection of an appropriate method to test the resistivity anisotropy. |
| Audience | Academic |
| Author | Liu, Tangyan Wen, Long Li, Min Wang, Li Yao, Xin He, Tingting Li, Jin He, Jiahuan |
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| Cites_doi | 10.1016/S1876-3804(21)60039-3 10.46690/ager.2021.02.03 10.46690/ager.2021.03.04 10.46690/ager.2021.04.04 10.3390/math9243289 10.1016/j.pepi.2019.106279 10.1029/95JB00960 10.3390/math10071069 10.1016/S1876-3804(20)60070-2 10.1016/j.jafrearsci.2016.04.009 10.1016/j.conbuildmat.2021.123893 10.3390/math9222948 10.46690/ager.2021.02.06 10.1029/94JB02164 10.1016/j.jhydrol.2020.125637 10.1190/INT-2019-0213.1 |
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| SubjectTerms | Anisotropy Carbon complex variable function Electric properties Electric resistance Electrical resistivity Electrodes Energy industry Energy resources Geotechnical engineering Heat conductivity Mathematics Methods Natural gas utilities Nondestructive testing Numerical analysis Numerical methods Oil exploration Physical properties Potential fields radial resistivity rock resistivity Rocks Simulation |
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| Title | Numerical Simulation Analysis of Difference from a Radial Resistivity Testing Method for Cylindrical Cores and a Conventional Testing Method |
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