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Application of the microtremor B-mode ultrasound technology in detecting the hidden hazards of dams |
QI Juan-Juan( ), FAN Hong-Qiang, LI Jing-Lun, CHEN Zi-Jian, HUANG Xiao-Tong, ZHANG Shu-Tong |
Institute of Geophysical Prospecting of Beijing,Beijing 100027,China |
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Abstract To quickly and effectively detect the hidden hazards of dams,this study proposed the microtremor B-mode ultrasound technology based on linear arrays.Most of the (earth) dams also act as highways,and the vibration signals generated from running vehicles propagate along dams.Therefore,this study proposed deploying linear arrays along the dams,with the vibration propagation direction consistent with the signal receiving direction.In this way,abundant vibration sources can be provided for detecting hidden hazards of the dams.The results of this study show that the data on multiple exploration points can be simultaneously acquired using the multi-channel acquisition technique based on linear arrays,thus improving the efficiency of field data acquisition.Moreover,the influence of source differences can be avoided,and the lateral resolution and the accuracy of exploration results can be improved.The technology proposed in this study was applied to the pre-flood safety inspection of a dam in Jiujiang,Jiangxi Province.Three low-velocity hidden hazards were identified in this dam and were presumed to be the weak layers of the dam foundation and the loose media of the dam body.Practices have proved that this technology effectively counteracts the deficiencies (i.e.,low efficiency and lateral resolution) of the previous microtremor exploration.Moreover,this technology allows scanning at a spacing of 1 m or 0.5 m,thus improving the lateral resolution.This study will provide efficient and accurate guidance for dam safety management.
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Received: 26 January 2022
Published: 24 February 2023
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Interpretation of data from multiple exploration points acquired in one acquisition
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Deployment method of microtremor array
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Comparison of dispersion curves of different arrays
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Workflow of GS2000 geological ultrasound system
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Conventional microtremor exploration profile
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Microtremor ultrasound profile (arrangement 13~16)
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[1] |
中华人民共和国水利部. 第一次全国水利普查公报[Z]. 北京: 中国水利水电出版社, 2013.
|
[1] |
Ministry of Water Resources,PRC. Bulletin of first national census for water[Z]. Beijing: China Water and Power Press, 2013.
|
[2] |
Cardarelli E, Cercato M, De Donno G.Characterization of an earth-filled dam through the combined use of electrical resistivity tomography,P- and SH-wave seismic tomography and surface wave data[J]. Journal of Applied Geophysics, 2014, 106:87-95.
|
[3] |
葛双成, 江影, 颜学军. 综合物探技术在堤坝隐患探测中的应用[J]. 地球物理学进展, 2006, 21(1),263-272.
|
[3] |
Ge S C, Jiang Y, Yan X J. Application of comprehensive geophysical exploration technique to hidden trouble detection of dyke[J]. Progress in Geophysics, 2006, 21(1):263-272.
|
[4] |
姚纪华, 罗仕军, 宋文杰, 等. 综合物探在水库渗漏探测中的应用[J]. 物探与化探, 2020, 44(2):456-462.
|
[4] |
Yao J H, Luo S J, Song W J, et al. The application of comprehensive geophysical exploration method to leakage detection of a reservoir[J]. Geophysical and Geochemical Exploration, 2020, 44(2):456-462.
|
[5] |
王万顺, 孙建会, 郝丽生, 等. 探地雷达在堤防检测中的应用[J]. 中国水利水电科学研究院学报, 2004, 2(3):226-230.
|
[5] |
Wang W S, Sun J H, Hao L S, et al. Study on application of ground penetrating radar to detect embankment[J]. Journal of China Institute of Water Resources and Hydropower Research, 2004, 2(3):226-230.
|
[6] |
刘艳秋, 徐洪苗, 胡俊杰. 综合物探方法在水库堤坝隐患探测中的应用[J]. 工程地球物理学报, 2019, 16(4):546-551.
|
[6] |
Liu Y Q, Xu H M, Hu J J. Application of comprehensive geophysical exploration technique to detecting hidden defects of reservoir dams[J]. Chinese Journal of Engineering Geophysics, 2019, 16(4):546-551.
|
[7] |
Okada H. The microtremor survey method[C]// Tulsa:Society of Exploration Geophysicists Geophysical Monographs Series,translated by Koya Suto,Society of Exploration Geophysicists, 2003.
|
[8] |
Okada H. Theory of efficient array observations of microtremors with special reference to the SPAC method[J]. Exploration Geophysics, 2006, 37(1):73-85.
|
[9] |
刘铁华, 刘铁, 程光华, 等. 复杂城市环境下地球物理勘探技术研究进展[J]. 工程地球物理学报, 2020, 17(6):711-720.
|
[9] |
Liu T H, Liu T, Cheng G H, et al. Research progress of geophysical exploration technology in complex urban environment[J]. Chinese Journal of Engineering Geophysics, 2020, 17(6):711-720.
|
[10] |
张建清, 熊永红, 李鹏. 微动勘探技术在城市轨道交通勘察中的应用[J]. 人民长江, 2016, 47(1):39-42.
|
[10] |
Zhang J Q, Xiong Y H, Li P. Application of micro tremor technology in urban rail transit survey[J]. Yangtza River, 2016, 47(1):39-42.
|
[11] |
徐佩芬, 侍文, 凌甦群, 等. 二维微动剖面探测“孤石”:以深圳地铁7号线为例[J]. 地球物理学报, 2012, 55(6):2120-2128.
|
[11] |
Xu P F, Shi W, Ling S Q, et al. Mapping spherically weathered “Boulders” using 2D microtremor profiling method:a case study along subway line 7 in Shenzhen[J]. Chinese Journal of Geophysics, 2012, 55(6):2120-2128.
|
[12] |
Wang F, Okeke A C U, Kogure T, et al. Assessing the internal structure of landslide dams subject to possible piping erosion by means of microtremor chain array and self-potential surveys[J]. Engineering Geology, 2018, 234:11-26.
|
[13] |
杜亚楠, 徐佩芬, 凌甦群. 土石混合滑坡体微动探测:以衡阳拜殿乡滑坡体为例[J]. 地球物理学报, 2018, 61(4):1596-1604.
|
[13] |
Du Y N, Xu P F, Ling S Q. Microtremor survey of soil-rock mixture landslides:An example of Baidian township,Hengyang City[J]. Chinese Journal of Geophysics, 2018, 61(4):1596-1604.
|
[14] |
黄光明, 徐佩芬, 李长安, 等. 覆盖区岩溶溶洞的微动探测试验研究——以福建永安大湖盆地为例[J]. 煤炭学报, 2019, 44(2):536-544.
|
[14] |
Huang G M, Xu P F, Li C A, et al. Application of 2D microtremor section survey method in covered karst area,taking Yongan Dahu Basin,Fujian Province as example[J]. Journal of China Coal Society, 2019, 44(2):536-544.
|
[15] |
周鑫, 王文静, 李杨, 等. 微动探测技术在地质灾害勘察中的应用研究[J]. 中国海洋大学学报, 2021, 51(8):58-64.
|
[15] |
Zhou X, Wang W J, Li Y, et al. Research and application of microtremor in the geological disaster[J]. Periodical of Ocean University of China, 2021, 51(8):58-64.
|
[16] |
董忠级, 张吉宏, 刘云祯, 等. 微动勘探技术在尾矿堆积坝勘察评价中的应用研究[J]. 工程勘察, 2020(9):72-78.
|
[16] |
Dong Z J, Zhang J H, Liu Y Z, et al. Research and application of microtremor in the investigation and evaluation of tailings embankment[J]. Geotechnical Investigation & Surveying, 2020(9):72-78.
|
[17] |
谢鹏, 王秋良, 李井冈, 等. SPAC法在江汉平原地层结构分层中的应用[J]. 地震工程学报, 2019, 41(3):718-723.
|
[17] |
Xie P, Wang Q L, Li J G, et al. Application of SPAC method on stratification of stratigraphic structure in Jianghan Plain[J]. China Earthquake Engineering Journal, 2019, 41(3):718-723.
|
[18] |
Singh A P, Sairam B, Pancholi V, et al. Delineation of thickness of intrabasaltic rocks beneath the Deccan Volcanic province of western India through microtremor analysis[J]. Soil Dynamics and Earthquake Engineering, 2020, 138:106348.
|
[19] |
程建设, 李鹏. 微动勘探技术在水库大坝隐患探测中的应用[J]. 人民长江, 2017, 48(3):57-60.
|
[19] |
Cheng J S, Li P. Application of microtremor exploration technology in detection of reservoir and dam latent hazards[J]. Yangtza River, 2017, 48(3):57-60.
|
[20] |
Haubrich R A. Microseisms:international dictionary of geophysics[J]. Pergamon Press Inc, 1967,2.
|
[21] |
Toksoz M N, Lacoss R T. Microtremors-mode structure and sources[J]. Science, 1968, 159:872-873.
|
[22] |
Aki K. Space and time spectra of stationary stochastic waves,with special reference to microtremor[J]. Bulletin of the Earthquake Research Institute, 1957, 35:415-456.
|
[23] |
Ling S, Okada H. An extended use of the spatial autocorrelation method for the estimation of the geological structures using microtremors[C]// Nagoya:Proceeding of the 89th SEGJ Conference,Society of Exploration Geophysicists of Japan, 1993:44-48.
|
[24] |
Ohori M, Nobata A, Wakamatsu K. A comparison of ESAC and FK methods of estimating phase velocity using arbitrarily shaped microtremor arrays[J]. Bulletin of the Seismological Society of America, 2002, 92(6):2323-2332.
|
[25] |
刘云祯, 梅汝吾, 叶佩, 等. WD智能天然源面波数据采集处理系统及其应用试验[J]. 物探与化探, 2016, 40(5):1007-1015.
|
[25] |
Liu Y Z, Mei R W, Ye P, et al. Data acquisition and processing system of WD intelligent natural source surface wave and its application test[J]. Geophysical and Geochemical Exploration, 2016, 40(5):1007-1015.
|
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