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高密度电阻率法和音频大地电磁法在猴场滑坡结构探测中的应用

刘永亮 张伟 刘振宇 易连兴 吴秋菊 梁楠 甘伏平 邬健强 韩凯

刘永亮,张 伟,刘振宇,等. 高密度电阻率法和音频大地电磁法在猴场滑坡结构探测中的应用[J]. 中国岩溶,2024,43(2):441-453 doi: 10.11932/karst20240208
引用本文: 刘永亮,张 伟,刘振宇,等. 高密度电阻率法和音频大地电磁法在猴场滑坡结构探测中的应用[J]. 中国岩溶,2024,43(2):441-453 doi: 10.11932/karst20240208
LIU Yongliang, ZHANG Wei, LIU Zhenyu, YI Lianxing, WU Qiuju, LIANG Nan, GAN Fuping, WU Jianqiang, HAN Kai. Application of high-density resistivity method and audio-frequency magnetotelluric method in the detection of landslide structure in Houchang town[J]. CARSOLOGICA SINICA, 2024, 43(2): 441-453. doi: 10.11932/karst20240208
Citation: LIU Yongliang, ZHANG Wei, LIU Zhenyu, YI Lianxing, WU Qiuju, LIANG Nan, GAN Fuping, WU Jianqiang, HAN Kai. Application of high-density resistivity method and audio-frequency magnetotelluric method in the detection of landslide structure in Houchang town[J]. CARSOLOGICA SINICA, 2024, 43(2): 441-453. doi: 10.11932/karst20240208

高密度电阻率法和音频大地电磁法在猴场滑坡结构探测中的应用

doi: 10.11932/karst20240208
基金项目: 广西重点研发计划项目《漓江流域峰丛谷地水资源安全保障关键技术研发与示范》(编号:2020AB22013)、广西重点研发项目《桂中岩溶复杂区页岩气“甜点”预测技术研发》(编号:桂科AB23026062)、广西壮族自治区地质环境监测站项目《漓江流域石山区小流域综合整治关键技术研发与示范》(编号:桂自然资函【2021】415)、中国地质科学院岩溶地质研究所基本科研业务费项目《管道型含水构造二维大功率充电法正演模拟研究》(编号:2021007)
详细信息
    作者简介:

    刘永亮(1986-),男,博士,助理研究员,从事电磁法理论、三维正反演技术及岩溶地质勘探方法研究。E-mail:liuyongliang198718@163.com

  • 中图分类号: P642.22;P631

Application of high-density resistivity method and audio-frequency magnetotelluric method in the detection of landslide structure in Houchang town

  • 摘要: 文章采用高密度电阻率法和音频大地电磁法对贵州省威宁县猴场滑坡区进行探测,探究从浅部到深部岩溶及裂缝发育情况、岩溶滑坡体底界面形态及滑坡体结构特征。通过音频大地电磁法划分了滑坡区地层结构,发现滑坡区发育浅部和深部两层岩溶,尤其在灰岩与泥页岩界面处的深部岩溶,加之煤层开采形成的采空区,是触发滑坡的背景条件;通过高密度电阻率法探测出的裂缝及岩溶发育区域,是滑坡体进一步位移拉裂的脆弱区。分析认为,岩溶发育破坏了滑坡体原来的整体性,使岩溶山体劣化成零散块体,是导致滑坡的关键因素之一。

     

  • 图  1  滑坡区水文地质简图(引自易连兴[30]

    Figure  1.  Hydrogeological sketch map of the landslide area (cited from Yi Lianxing[30])

    图  2  滑坡区卫星图

    Figure  2.  Satellite image of the landslide area

    图  3  高密度电阻率法测量装置示意图

    Figure  3.  Schematic diagram of high-density resistivity method

    图  4  音频大地电磁法测量装置示意图

    Figure  4.  Schematic diagram of audio-frequency magnetotelluric method

    图  5  测线布置图

    Figure  5.  Layout of survey lines

    图  6  音频大地电磁数据重复性检查曲线对比图

    Figure  6.  Contrast of repetitive check curves of audio-frequency magnetotelluric data

    图  7  音频大地电磁反演解译成果图

    Figure  7.  Results of audio-frequency magnetotelluric inversion

    图  8  L1线高密度电阻率法数据反演及解译结果图

    Figure  8.  Results of inversion and interpretation of high-density resistivity data of Line 1

    图  9  L2线高密度电阻率法数据反演及解译结果图

    Figure  9.  Results of inversion and interpretation of high-density resistivity data of Line 2

    图  10  L11线高密度电阻率法数据反演及解译结果图

    Figure  10.  Results of inversion and interpretation of high-density resistivity data of Line 11

    图  11  L12线高密度电阻率法数据反演及解译结果图

    Figure  11.  Results of inversion and interpretation of high-density resistivity data of Line 12

    图  12  滑坡山体裂缝空间展布解译成果图

    Figure  12.  Spatial distribution of landslide cracks

    表  1  猴场滑坡区地层岩性表

    Table  1.   List of strata and lithology in Houchang landslide area

    地层划分 主要岩性特征 厚度/m
    栖霞茅口组(P2q+m 灰至深灰色厚层至块状灰岩夹燧石灰岩、白云质灰岩 约200
    梁山组(P2l 细砂岩、石英砂岩、石英粉砂岩夹灰色页岩、炭质页岩及煤层。层煤多以煤线及透镜体产出,
    目前发现可采稳定煤层只有1层,位于灰岩与梁山组接触面以下35~50 m深度,可采厚度0.5~0.8 m
    110~130
    下载: 导出CSV

    表  2  测线布置信息表

    Table  2.   Information of line survey arrangement

    测线编号 测线长度/m 测线方位/° 点距/m
    L1 690 110 10
    L2 590 139 10
    L11 1 700 33 10~200
    L12 649 21.2 11
    下载: 导出CSV

    表  3  高密度电阻率法测量情况表

    Table  3.   Information of high-density resistivity method

    测线测线长度/m测点数/个点距/m测点起始编号装置类型
    L159060101310~1900对称四极和三极测深
    L26496011991~1640对称四极和三极测深
    L1159060101080~1670对称四极和三极测深
    L1259060101080~1670对称四极和三极测深
    下载: 导出CSV

    表  4  音频大地电磁法测量情况表

    Table  4.   Information of audio-frequency magnetotelluric method

    测线测线长度/m测点数/个点距/m测点起始编号装置类型
    L16903910~201270~1960张量
    L111 7003610~200920~2620张量
    下载: 导出CSV

    表  5  高密度电阻率法开工前后数据对照表

    Table  5.   Contrast of data before and after the use of high-density resistivity method

    高密度电阻率法开工/收工测量数据均方根误差
    点号140014101420143014401450146014701480149015002.05%
    开工前数据702.2413.7610.5575603.8655.4592.4697870692770.2
    收工后数据701.3410.9613.6575.1604655.6591696.5869.5691.5769.7
    下载: 导出CSV
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  • 收稿日期:  2023-02-27
  • 录用日期:  2023-06-27
  • 修回日期:  2023-06-21
  • 网络出版日期:  2024-07-10
  • 刊出日期:  2024-04-30

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