Key Technologies for Surface-Borehole Transient Electromagnetic Systems and Applications
Abstract
:1. Introduction
2. Characteristics of Surface-Borehole Transient Electromagnetic Responses
3. Borehole Electromagnetic Signal Acquisition System
3.1. Non-Polarized Electrodes and Three-Component Magnetic Sensor
3.2. Key Technologies of the Borehole Electromagnetic Signal Acquisition System
3.2.1. Channel Gain
3.2.2. Sampling Frequency
3.2.3. Synchronization of the Surface Transmission System and the Borehole Electromagnetic Signal Acquisition System
4. Tests in Real Mines
4.1. Transient Electromagnetic Test with a Long Wire Source
4.2. Transient Electromagnetic Test with a Large Loop Source
5. Conclusions
- The borehole electromagnetic signal acquisition system designed in this study achieved the synchronous acquisition and storage of time-domain signals of three-component magnetic field signals and electrical signals in the borehole;
- The logging results had strong regularity and were correlated to the position of the mineralized metallic ore. The attenuation time curves had low amplitudes in the mineralized metallic ore layer, and the time-domain curves also converged well;
- The borehole electromagnetic signal acquisition system rotated during the logging process, resulting in scattered magnetic signals. To solve this problem, a push-back device and azimuth-measuring section were installed to prevent the electromagnetic acquisition system from rotating during the measurement, and the real-time instrument rotation angle and status were measured for angle compensation. In addition, the stability and sensitivity of the three-component magnetic field sensor will be improved in future research.
- Due to difficulties in finding a deep metal mine, the temperature and pressure of the metal mine selected in this study were far below the maximum performance of the system at 3000 m. However, the response characteristics indicated the efficacy of the borehole receiver; hence, it could be commercialized.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Borehole Depth (m) | Mineral |
---|---|
0–671.92 | Quartz monzodiorite porphyry |
671.92–686.32 | Chalcopyrite quartz monzodiorite porphyry |
686.32–727.16 | Quartz monzodiorite porphyry |
727.16–762.76 | Chalcolithic dolomitic marble |
762.76–777.96 | Copper–iron ore body |
777.96–1031.80 | Marble |
1031.80–1040.40 | Quartz monzodiorite porphyry |
1040.40–1049.00 | Copper–iron ore body |
1049.00–1107.20 | Quartz monzodiorite porphyry |
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Guo, Q.; Mao, Y.; Yan, L.; Chen, W.; Yang, J.; Xie, X.; Zhou, L.; Li, H. Key Technologies for Surface-Borehole Transient Electromagnetic Systems and Applications. Minerals 2024, 14, 793. https://doi.org/10.3390/min14080793
Guo Q, Mao Y, Yan L, Chen W, Yang J, Xie X, Zhou L, Li H. Key Technologies for Surface-Borehole Transient Electromagnetic Systems and Applications. Minerals. 2024; 14(8):793. https://doi.org/10.3390/min14080793
Chicago/Turabian StyleGuo, Qingming, Yurong Mao, Liangjun Yan, Wenhui Chen, Jupeng Yang, Xingbing Xie, Lei Zhou, and Haojin Li. 2024. "Key Technologies for Surface-Borehole Transient Electromagnetic Systems and Applications" Minerals 14, no. 8: 793. https://doi.org/10.3390/min14080793