• 全国中文核心期刊
  • 中国科技核心期刊
  • 中国科学引文数据库收录期刊
  • 世界期刊影响力指数(WJCI)报告来源期刊
  • Scopus, CA, DOAJ, EBSCO, JST等数据库收录期刊

留言板

尊敬的读者、作者、审稿人, 关于本刊的投稿、审稿、编辑和出版的任何问题, 您可以本页添加留言。我们将尽快给您答复。谢谢您的支持!

姓名
邮箱
手机号码
标题
留言内容
验证码

重庆地区典型岩溶塌陷跨孔电阻率CT法探测研究

李兴儒 龚思宇 曹聪 刘智 姜巽 梁韵

李兴儒,龚思宇,曹 聪,等. 重庆地区典型岩溶塌陷跨孔电阻率CT法探测研究[J]. 中国岩溶,2026,45(2):329-341 doi: 10.11932/karst20260204
引用本文: 李兴儒,龚思宇,曹 聪,等. 重庆地区典型岩溶塌陷跨孔电阻率CT法探测研究[J]. 中国岩溶,2026,45(2):329-341 doi: 10.11932/karst20260204
LI Xingru, GONG Siyu, CAO Cong, LIU Zhi, JIANG Xun, LIANG Yun. Study on cross-borehole resistivity CT method for detecting typical karst collapses in the Chongqing region[J]. CARSOLOGICA SINICA, 2026, 45(2): 329-341. doi: 10.11932/karst20260204
Citation: LI Xingru, GONG Siyu, CAO Cong, LIU Zhi, JIANG Xun, LIANG Yun. Study on cross-borehole resistivity CT method for detecting typical karst collapses in the Chongqing region[J]. CARSOLOGICA SINICA, 2026, 45(2): 329-341. doi: 10.11932/karst20260204

重庆地区典型岩溶塌陷跨孔电阻率CT法探测研究

doi: 10.11932/karst20260204
基金项目: 重庆市地质矿产勘查开发局科研项目“超大城市现代化治理地质安全综合研究”(DKJ-2024-NJD-B-005)
详细信息
    作者简介:

    李兴儒(1991-),男,硕士研究生,工程师,主要从事岩溶探测研究。E-mail:386506608@qq.com

    通讯作者:

    曹聪(1985-),男,学士,高级工程师,从事水工环地质和生态环境保护方面研究工作。E-mail:281381478@qq.com

  • 中图分类号: P631.322;P642.25

Study on cross-borehole resistivity CT method for detecting typical karst collapses in the Chongqing region

  • 摘要: 重庆地区的岩溶塌陷具有隐蔽性、突发性和难以预见的特点,常规地球物理方法难以实现精准探测。跨孔电阻率CT具有独特的观测方式和较高的成像分辨率,适用于岩溶地区的精细化隐患排查。文章在梳理和分析重庆地区岩溶塌陷演化机理、形成过程的基础上,构建了相应的电阻率模型,涵盖了暂未形成土洞、初步形成土洞和土洞进一步扩大三个阶段,并通过数值模拟获得了岩溶塌陷各演化阶段的电阻率响应特征。结果表明:跨孔电阻率CT在划分基岩界面的基础上,能够准确识别低电阻率的岩溶管道和土洞等异常体,精准地刻画异常区的空间分布,误差不超过0.5 m。实际案例表明:跨孔电阻率CT剖面能够直观反映岩层界面及隐伏塌陷的位置和范围,探测效果良好。该研究拓展了以地面电阻率法为主的传统岩溶塌陷勘探思路,为重庆地区岩溶塌陷的预警与防治提供了理论依据。

     

  • 图  1  重庆地区典型岩溶塌陷的形成演化过程示意图

    Figure  1.  Schematic diagram of the formation and evolution of typical karst collapses in Chongqing

    图  2  跨孔电阻率CT工作示意图

    Figure  2.  Schematic diagram of operating cross-borehole resistivity CT

    图  3  重庆地区典型岩溶塌陷演化的电阻率模型

    Figure  3.  Resistivity model of typical karst collapse evolution in Chongqing

    图  4  模型a反演结果

    Figure  4.  Inversion results of Model a

    图  6  模型c反演结果

    Figure  6.  Inversion results of Model c

    图  5  模型b反演结果

    Figure  5.  Inversion results of Model b

    图  7  工区钻孔和已有塌陷位置

    Figure  7.  Borehole and subsidence locations in the working area

    图  8  钻孔间地质剖面和电阻率CT剖面

    Figure  8.  Geological profile and profile of cross-borehole resistivity CT

    图  9  模型d反演结果

    Figure  9.  Inversion results of Model d

    表  1  模型参数

    Table  1.   Parameters of the models

    名称土洞尺寸/m×m土洞中心位置/m土洞顶板埋深/m岩溶尺寸/m×m岩溶中心位置/m
    模型a///2.0×6.0(10,11)
    模型b4.0×2.5(10,6.75)5.5
    模型c4.0×5.5(10,5.25)2.5
    下载: 导出CSV

    表  2  数值模拟基本参数

    Table  2.   Basic parameters of numerical simulation

    模型尺寸/m×m电极距/m网格大小/m测量最大重复误差/%最大互换测量误差/%反演最大均方误差/%迭代次数/次圆滑系数
    10×201.00.535330100
    下载: 导出CSV

    表  3  原始电阻率和反演电阻率数值对比表( Ω·m)

    Table  3.   Comparison of original and inverse resistivity values ( Ω·m)

    正演/反演岩溶塌陷阶段模型完整土体土洞(土体松散区)、岩溶管道灰岩
    正演//100305000
    反演未形成土洞阶段模型a85.26~113.57(平均值:101.48)30.28~69.25(平均值:41.99)4799.82~5000(平均值:4725.05
    初步形成土洞阶段模型b79.16~118.71(平均值:98.22)30.45~72.84(平均值:44.84)4712.90~5000(平均值:4794.06
    土洞进一步扩大阶段模型c76.2~114.77(平均值:98.69)30.05~56.08(平均值:38.56)4636.55~5000(平均值:4770.61
    下载: 导出CSV
  • [1] 范长丽, 贾慧涛, 蔡向阳. 微动在城区岩溶勘探中的效果研究[J]. 工程地球物理学报, 2020, 17(5): 652-657.

    Fan Changli, Jia Huitao, Cai Xiangyang. Study on the effect of microtremor exploration in karst exploration in urban area[J]. Chinese Journal of Engineering Geophysics, 2020, 17(5): 652-657.
    [2] 李卫卫, 熊鑫, 蒙爱军. 跨孔地震CT探测基岩面附近岩溶研究[J]. 工程地球物理学报, 2022, 19(1): 6-15.

    Li Weiwei, Xiong Xin, Meng Aijun. Study on karst near bedrock surface by cross-hole seismic CT detection[J]. Chinese Journal of Engineering Geophysics, 2022, 19(1): 6-15.
    [3] 赵群, 曲寿利, 薛诗桂, 张明. 碳酸盐岩溶洞物理模型地震响应特征研究[J]. 石油物探, 2010, 49(4): 351-358.

    Zhao Qun, Qu Shouli, Xue Shigui, Zhang Ming. Study on seismic response characteristics of physical models of karst cavities in carbonate rocks[J]. Petroleum Geophysical Prospecting, 2010, 49(4): 351-358.
    [4] 李世聪, 刘亚军, 彭荣华, 郭鹏, 安进新, 黄磊. 瞬变电磁法对隐伏岩溶探测的影响因素研究[J]. 地球物理学进展, 2022, 37(1): 397-412.

    Li Shicong, Liu Yajun, Peng Ronghua, Guo Peng, An Jinxin, Huang Lei. Research on the influencing factors of transient electromagnetic method on the detection of hidden karst[J]. Progress in Geophysics, 2022, 37(1): 397-412.
    [5] 李俊杰, 朱红雷, 赵国军, 夏志强, 郭佳豪. 地质雷达电磁干扰分析及在隧洞岩溶探测中的应用[J]. 中国岩溶, 2018, 37(2): 286-293.

    Li Junjie, Zhu Honglei, Zhao Guojun, Xia Zhiqiang, Guo Jiahao. Electromagnetic interference analysis of ground penetrating radar and its Application in karst detection in tunnels[J]. Carsologica Sinica, 2018, 37(2): 286-293.
    [6] 王洁. 三维高密度电法在城市地下岩溶塌陷区探测中的应用[J]. 工程地球物理学报, 2021, 18(1): 107-112.

    Wang Jie. Application of three-dimensional high-density electrical method in urban underground karst collapse area detection[J]. Chinese Journal of Engineering Geophysics, 2021, 18(1): 107-112.
    [7] 张银松, 曹聪, 康世海, 刘家富. 重庆市中梁山地区隐伏塌陷特征及物探勘测的思路[J]. 中国岩溶, 2020, 39(6): 918-927.

    Zhang Yinsong, Cao Cong, Kang Shihai, Liu Jiafu. Characteristics of hidden karst collapse in the Zhongliangshan area of Chongqing and an approach of geophysical surveys[J]. Carsologica Sinica, 2020, 39(6): 918-927.
    [8] 何军, 刘磊, 黎清华, 刘道涵, 陈标典, 张傲, 赵永波. 隐伏岩溶区地下空间探测技术方法研究: 以武汉市为例[J]. 水文地质工程地质, 2020, 47(6): 47-56.

    He Jun, Liu Lei, Li Qinghua, Liu Daohan, Chen Biaodian, Zhang Ao, Zhao Yongbo. Techniques for detecting underground space in hidden karst regions: Taking Wuhan as an example[J]. Hydrogeology & Engineering Geology, 2020, 47(6): 47-56.
    [9] 王喜迁, 孙明国, 张皓, 江玉乐. 高密度电法在岩溶探测中的应用[J]. 煤田地质与勘探, 2011, 39(5): 72-75.

    Wang Xiqian, Sun Mingguo, Zhang Hao, Jiang Yule. Application of High-Density electrical technique in karst detection[J]. Coal Geology & Exploration, 2011, 39(5): 72-75.
    [10] Coscia I, Linde N, Greenhalgh S, Vogt T, Green A. Estimating traveltimes and groundwater flow patterns using 3D time-lapse crosshole ERT imaging of electrical resistivity fluctuations induced by infiltrating river water[J]. Geophysics, 2012, 77 (4): E239−E250.
    [11] Cho A H, Song S Y, Kim B, Son J S, Nam M J. Analysis of response characteristics in borehole electrical resistivity surveys and their applications[J]. Journal of the Korean Society of Mineral and Energy Resources Engineers, 2023, 60 (5): 377-394.
    [12] Phillips M, Buchli C, Weber S, Boaga J, Pavoni M, Bast A. Brief communication: Combining borehole temperature, borehole piezometer and cross-borehole electrical resistivity tomography measurements to investigate seasonal changes in ice-rich mountain permafrost[J]. The Cryosphere, 2023, 17: 753-760.
    [13] Liu R, Sun H, Wang Z, Fan Q, Liu S, Lin J, Yang Y. Investigation of subsurface karst in an opencast mine in southwestern China via surface and cross-borehole electrical resistivity tomography[J]. Exploration Geophysics, 2023, 54(6):685-695.
    [14] Deceuster J, Delgranche J, Kaufmann O. 2D cross-borehole resistivity tomographies below foundations as a tool to design proper remedial actions in covered karst[J]. Journal of Applied Geophysics, 2006, 60(1): 68-86.
    [15] 胡富彭, 欧元超, 付茂如. 不同充填介质下的溶洞跨孔电阻率CT探查数值模拟[J]. 中国岩溶, 2019, 38(5): 766-773.

    Hu Fupeng, Ou Yuanchao, Fu Maoru. Study on numerical simulation of karst cross-hole resistivity CT exploration with different filling media[J]. Carsologica Sinica, 2019, 38(5): 766-773.
    [16] 苏宝, 刘晓丽, 卫晓波, 高歌, 王云鹏. 井间超高密度电阻率法溶洞探测研究[J]. 物探与化探, 2021, 45(5): 1354-1358.

    Su Bao, Liu Xiaoli, Wei Xiaobo, Gao Ge, Wang Yunpeng. Karst cave prospecting using cross-hole ultra-high density resistivity method[J]. Geophysical and Geochemical Exploration, 2021, 45(5): 1354-1358.
    [17] 张文俊, 李术才, 苏茂鑫, 薛翊国, 邱道宏. 基于井间电阻率成像的城市地铁溶洞探测方法[J]. 山东大学学报(工学版), 2014, 44(3): 75-82.

    Zhang Wenjun, Li Shucai, Su Maoxin, Xue Yiguo, Qiu Daohong. Detection method of karst caves in city subway based on the cross-hole resistivity tomography[J]. Journal of Shandong University (Engineering Science), 2014, 44(3): 75-82.
    [18] 张巍, 周瑜琨, 刘立岩, 陈俊良. 跨孔电阻率法在城市输水管道渗漏监测中的应用[J]. 物探与化探, 2024, 48(3): 884-890.

    Zhang Wei, Zhou Yukun, Liu Liyan, Chen Junliang. Application of the cross-borehole resistivity method in the monitoring of leakage for urban water supply pipelines[J]. Geophysical and Geochemical Exploration, 2024, 48(3): 884-890.
    [19] 马新民, 毛德强, 闫利刚, 刘登峰, 李书鹏, 张家铭, Alex Furman, 王京. 基于跨孔电阻率CT的污染阻隔帷幕性能检测[J]. 环境工程, 2023, 41(8): 188-195, 201.

    Ma Xinmin, Mao Deqiang, Yan Ligang, Liu Dengfeng, Li Shupeng, Zhang Jiaming, Alex Furman, Wang Jing. Performance assessment of contamination barrier curtain based on cross-borehole electrical resistivity tomography (CT)[J]. Environmental Engineering, 2023, 41(8): 188-195, 201.
    [20] 李前银. 再论岩溶塌陷的形成机制[J]. 中国地质灾害与防治学报, 2009, 20(3): 52-55.

    Li Qianyin. Further study on the formation mechanism of karst collapse[J]. The Chinese Journal of Geological Hazard and Control, 2009, 20(3): 52-55.
    [21] 王滨, 贺可强, 高宗军. 岩溶塌陷发育的时空阶段性分析[J]. 水文地质工程地质, 2001, 28(5): 24-27.

    Wang Bin, He Keqiang, Gao Zongjun. Spatiotemporal phased analysis of karst collapse development[J]. Hydrogeology & Engineering Geology, 2001, 28(5): 24-27.
    [22] 张丽芬, 曾夏生, 姚运生, 廖武林. 我国岩溶塌陷研究综述[J]. 中国地质灾害与防治学报, 2007,18(3): 126-130.

    Zhang Lifen, Zeng Xiasheng, Yao Yunsheng, Liao Wulin. Review on karst collapse in China[J]. The Chinese Journal of Geological Hazard and Control, 2007,18(3): 126-130.
    [23] 谭开鸥, 李玉生. 重庆地区的岩溶塌陷及其形成机理[J]. 中国地质灾害与防治学报, 1995, 6(3): 23-27.

    Tan Kaiou, Li Yusheng. Karst collapse and its formation mechanism in Chongqing region[J]. The Chinese Journal of Geological Hazard and Control, 1995, 6(3): 23-27.
    [24] 张海坦, 李庆华, 邓书金. 歌乐山岩溶地面塌陷发育特征[J]. 中国岩溶, 2015, 34(1): 58-63.

    Zhang Haitan, Li Qinghua, Deng Shujin. Development characteristics of karst collapse in the Gele mountain area[J]. Carsologica Sinica, 2015, 34(1): 58-63.
    [25] 吴远斌, 殷仁朝, 雷明堂, 戴建玲, 贾龙, 潘宗源, 马骁, 周富彪. 重庆中梁山地区隧道工程影响下岩溶塌陷形成演化模式及防治对策[J]. 中国岩溶, 2021, 40(2): 246-252.

    Wu Yuanbin, Yin Renchao, Lei Mingtang, Dai Jianling, Jia Long, Pan Zongyuan, Ma Xiao, Zhou Fubiao. Triggering factors and prevention-control countermeasures of karst collapses caused by tunnel construction in the Zhongliangshan area, Chongqing[J]. Carsologica Sinica, 2021, 40(2): 246-252.
    [26] 刘征宇. 电阻率跨孔CT探测方法及其工程应用[D]. 济南: 山东大学, 2014.

    Liu Zhengyu. Research on the resistivity cross-hole CT methods and its application in the engineering field[D]. Jinan: Shandong University, 2014.
    [27] 李金铭. 地电场与电法勘探[M]. 北京: 地质出版社, 2005.

    Li Jinming. Geoelectric field and electrical prospecting[M]. Beijing: Geology Press, 2005.
    [28] 郑智杰, 陈贻祥, 甘伏平. 岩溶区岩土层地球物理性质浅析: 以吉利岩溶塌陷区为例[J]. 地球物理学进展, 2016, 31(2): 920-927.

    Zheng Zhijie, Chen Yixiang, Gan Fuping. Brief analysis of the geophysical properties of rock and soil in karst area: Taking Jili karst collapse area as an example[J]. Progress in Geophysics, 2016, 31(2): 920-927.
  • 加载中
图(9) / 表(3)
计量
  • 文章访问数:  50
  • HTML浏览量:  17
  • PDF下载量:  17
  • 被引次数: 0
出版历程
  • 收稿日期:  2024-11-26
  • 录用日期:  2025-08-07
  • 修回日期:  2025-04-11
  • 刊出日期:  2026-04-01

目录

    /

    返回文章
    返回