吉林大学学报(地球科学版) ›› 2022, Vol. 52 ›› Issue (3): 713-724.doi: 10.13278/j.cnki.jjuese.20210254

• 第十五届中国国际地球电磁学术研讨会专栏 • 上一篇    下一篇

可控源电磁法中关键技术研究与应用

李建华1,2,3,林品荣1,2,3,张强1,2,3,郑采君1,2,3,孙夫文1,2,3,丁卫忠1,2,3,周海涛1,2,3,齐方帅1,2,3,刘昕卓1,2,3   

  1. 1.中国地质科学院地球物理地球化学勘查研究所,河北廊坊065000

    2.自然资源部地球物理电磁法探测技术重点实验室,河北廊坊065000

    3.国家现代地质勘查工程技术研究中心,河北廊坊065000

  • 出版日期:2022-05-26 发布日期:2024-01-02
  • 基金资助:

    国家重点研发计划项目(2018YFC0603201);中国地质调查局项目(DD20211340,DD20190556);中央科研院所基本科研业务费项目(AS2021Y01)


Research and Application of Key Technology of Controlled Source Electromagnetic Method

Li Jianhua1,2,3, Lin Pinrong1,2,3, Zhang Qiang1,2,3, Zheng Caijun1,2,3, Sun Fuwen1,2,3, Ding Weizhong1,2,3, Zhou Haitao1,2,3 , Qi Fangshuai1,2,3 , Liu Xinzhuo1,2,3   

  1. 1.  Institute of Geophysical and Geochemical Exploration, Chinese Academy of Geological Science, Langfang 065000, Hebei, China

    2. Key Laboratory of Geophysical Electromagnetic Probing Technologies, Ministry of Natural Resources, Langfang 065000, Hebei,China

    3. National Center for Modern Geological Exploration Engineering and Technology Research, Langfang 065000, Hebei,China

     

  • Online:2022-05-26 Published:2024-01-02
  • Supported by:
    Supported by the National Key R&D Program of China (2018YFC0603201), the Project of China Geological Survey (DD20211340, DD20190556) and the Project of Central Research Institute Basic Scientific Research Business (AS2021Y01)

摘要: 随着地质目标体大深度精细结构探测应用需求的增加,进一步提升可控源电磁法(CSEM)相关分辨率逐渐成为研究热点。为提升CSEM的勘探能力,解决其提高高频信噪比、压制人文干扰和加大勘探深度等关键问题,提出了基于电容补偿的高频供电技术、基于频点优化和数字滤波抑制工频干扰的数据采集与处理技术,以及基于观测电磁场场值直接反演的解释技术。首先将电容网络单元接入供电回路,通过计算分布电感和选择确定补偿支路连接方式,组合出最接近理论值的谐振电容,不同程度地提高了1 000~10 000 Hz的发射电流;然后通过合理设计采样率和采样长度优化设置发射频点,再通过数字滤波,实现了对50 Hz工频及其谐波对观测数据影响的校正;最后将常规可控源音频电磁法(CSAMT)低频观测频率由0.100 Hz拓展至0.025 Hz,对观测电磁场信号直接处理和反演。在此基础上,建立理论模型进行数值模拟和在干扰区开展了已知地热田的大深度探测试验,结果表明,CSEM探测深度可达3 000~5 000 m,有效提升了人工源电磁法的勘探深度。

关键词: 可控源电磁法, 电容补偿, 工频干扰, 大深度探测

Abstract:

 With the increasing requirements for large-depth and fine-structure detection of geological targets, the research on further improving the relative resolution of the controllable source electromagnetic method has gradually become a research hotspot. In order to improve the high-frequency signal-to-noise ratio, suppress human interference, increase the depth of exploration, we proposed high frequency power supply technology based on capacitor compensation, data acquisition and processing technology based on frequency optimization and digital filtering to suppress power frequency interference, and interpretation technology based on direct inversion of observed electromagnetic field. First, the capacitor network unit is connected to the power supply circuit, and by calculating distribution circuit inductance and selecting compensation branch,the closest resonant capacitance is combined to the theoretical value, so as to increase the sending current of sending signals at different frequencies by putting capacitors with different capacitance values in series for different frequencies of 1 000-10 000 Hz. Then, by optimizing the sampling rate and sampling length, and by digital filtering, the influence of 50 Hz power frequency and its harmonics on the observed data can be corrected. Finally, through extending the frequency of conventional CSAMT low frequency observations from 0.100 Hz to 0.025 Hz, the exploration depth can be improved by direct treating and inversing the observed electromagnetic field components. On this basis, the theoretical model of numerical simulation was established. The deep exploration tests of known geothermal fields were carried out in the disturbed area. The results show that the depth of CSEM can reach 3 000-5 000 m, which effectively enhances the exploration depth of the artificial source electromagnetic method.

Key words:  controlled source electromagnetic method, capacitance compensation, power frequency interference, large-depth exploration

中图分类号: 

  • P631
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