Adverse Geology Identification in Tunnel: Method, Research Status and Intelligent Development Direction
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摘要: 随着隧道施工对于不良地质识别精度要求的不断提高以及人工智能技术的发展, 融合多源信息的不良地质智能化识别已成为发展趋势。本文首先阐述了常见的6种隧道不良地质类型及其地质成因, 回顾分析了隧道主要的不良地质识别方法及现状, 详细介绍了笔者在不良地质智能化识别方面的探索性研究: 基于机器学习利用图像识别技术对隧道围岩岩性与裂隙特征进行智能识别; 融合图像和光谱特征进行不良地质识别; 将地化分析融入到传统的超前钻探中, 融合随钻参数和地化信息进行不良地质随钻识别, 既可以发挥超前钻探在感知岩体质量和地层信息变化方面的优势, 又可以发挥地化分析在岩性和不良地质异常识别方面的优势; 基于地质与物探联合反演进行不良地质识别, 旨在实现掌子面前方不良地质体“形”(位置、形态、规模)和“性”(性质和类型)的精确识别。最后, 对隧道不良地质智能化识别的发展趋势进行了展望。Abstract: With the continuous improvement of the accuracy requirements for adverse geology identification in tunnel construction and the development of the artificial intelligence technology, the adverse geology intelligent identification with multi-source information has become a development trend.This study illustrated six common types of adverse geology in tunnels and their geological causes, review the main identification methods and current situation of adverse geology in tunnels, and introduce in detail the exploratory research on intelligent identification of adverse geology.Our research includes: (1) image identification technology is used to identify the lithology and fracture characteristics of tunnel surrounding rock intelligently; (2) image and spectral features fusion method is used to identify adverse geology; (3) geochemical analysis integrated into the traditional advanced drilling is used to identify adverse geology by integrating drilling parameters and geochemical information, which can not only give play to advantages of advanced drilling in perceiving changes of rock mass quality and stratum information, but also give play to advantages of geochemical analysis in identifying lithology and adverse geological anomaly; (4) the joint inversion of geology and geophysical exploration is used to identify the adverse geology, which aims to realize the accurate identification of the “shape” (position, shape, and scale)and “nature” (character and type) of unfavorable geological bodies in front of the working face.Finally, we prospect the development trend of intelligent identification of tunnel adverse geology.
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曹瑞琅, 王玉杰, 赵宇飞, 等, 2021.基于钻进过程指数定量评价岩体完整性原位试验研究[J].岩土工程学报, 43(4):679-687.
陈湘生, 徐志豪, 包小华, 等, 2020.中国隧道建设面临的若干挑战与技术突破[J].中国公路学报, 33(12): 1-14.
邓铭江, 许振浩, 刘斌, 2021.超特长隧洞TBM施工"115"超前地质预报系统创建与实践--以北疆供水二期工程为例[J].隧道建设(中英文), 41(9): 1433-1450.
杜宇本, 蒋良文, 陈明浩, 等, 2021.中国铁路隧道勘察技术的发展与展望[J].隧道建设(中英文), 41(11): 1943-1952.
高红科, 2021.矿山巷道围岩数字钻进原位测试理论与评价方法研究[D].济南: 山东大学.
黄春峰, 2007.合武铁路隧道超前地质预报技术综述[J].铁道标准设计, (S1): 223-226.
黄鑫, 许振浩, 林鹏, 等, 2020.隧道突水突泥致灾构造识别方法及其工程应用[J].应用基础与工程科学学报, 28(1):103-122.
黄雄军, 2011.宜万铁路马鹿箐隧道+978溶腔预测预报[J].现代隧道技术, 48(1): 128-132.
李鹏云, 聂文, 陈雯, 等, 2009.抽水蓄能电站建设与岩体初始应力场综述[J].长江科学院院报, 26(8): 59-64.
李术才, 刘斌, 李树忱, 等, 2011.基于激发极化法的隧道含水地质构造超前探测研究[J].岩石力学与工程学报, 30(7):1297-1309.
李术才, 刘斌, 孙怀凤, 等, 2014.隧道施工超前地质预报研究现状及发展趋势[J].岩石力学与工程学报, 33(6):1090-1113.
李术才, 刘洪亮, 李利平, 等, 2017.基于数码图像的掌子面岩体结构量化表征方法及工程应用[J].岩石力学与工程学报, 36(1): 1-9.
李术才, 许振浩, 杜毓超, 2019.隧道突水突泥致灾系统与孕灾评判[M].北京: 科学出版社.
李术才, 许振浩, 黄鑫, 等, 2018.隧道突水突泥致灾构造分类、地质判识、孕灾模式与典型案例分析[J].岩石力学与工程学报, 37(5): 1041-1069.
李天斌, 2008.汶川特大地震中山岭隧道变形破坏特征及影响因素分析[J].工程地质学报, 16(6): 742-750.
李尧, 李术才, 刘斌, 等, 2017.钻孔雷达探测地下不良地质体的正演模拟及其复信号分析[J].岩土力学, 38(1): 300-308.
李智毅, 1994.工程地质学概论[M].武汉: 中国地质大学出版社.
李忠权, 刘顺, 徐开礼, 等, 2010.构造地质学[M].北京: 地质出版社.
林鹏, 许广璐, 许振浩, 等, 2021.基于岩石矿物光谱原位测试的隧道内蚀变带快速识别方法[J].应用基础与工程科学学报, 29(5): 1093-1107.
刘斌, 李术才, 李树忱, 等, 2009.隧道含水构造直流电阻率法超前探测研究[J].岩土力学, 30(10): 3093-3101.
刘福民, 2022.基于隧道围岩地球化学异常的不良地质识别与预测研究及工程应用[D].济南: 山东大学.
刘光亚, 1979.基岩地下水[M].北京: 地质出版社.
刘阳飞, 李天斌, 孟陆波, 2018.常用隧道超前地质预报方法适用性分析[J].工程地球物理学报, 15(6): 804-811.
刘征宇, 李术才, 刘斌, 等, 2017.基于距离加权约束算法的围岩三维电阻率CT反演成像研究[J].岩土工程学报, 39(4):652-661.
罗利锐, 刘志刚, 闫怡冲, 2011.超前地质预报系统的提出及其发展方向[J].岩土力学, 32(S1): 614-618.
聂利超, 2015.隧道施工含水构造激发极化定量超前地质预报理论及其应用[J].岩石力学与工程学报, 34(11): 2374.
钱七虎, 2017.隧道工程建设地质预报及信息化技术的主要进展及发展方向[J].隧道建设, 37(3): 251-263.
邱道宏, 李术才, 薛翊国, 等, 2014.基于数字钻进技术和量子遗传-径向基函数神经网络的围岩类别超前识别技术研究[J].岩土力学, 35(7): 2013-2018.
施雪松, 2020.基于元素和矿物异常分析的隧道不良地质识别方法[D].济南: 山东大学.
舒良树, 2011.普通地质学[M].北京: 地质出版社.
谭卓英, 李文, 岳鹏君, 等, 2015.基于钻进参数的岩土地层结构识别技术与方法[J].岩土工程学报, 37(7): 1328-1333.
汪进超, 陶东新, 黄燕庆, 等, 2019.基于超声波合成孔径技术的钻孔成像方法[J].岩土力学, 40(S1): 557-564.
王军祥, 曾相森, 徐晨晖, 等, 2022.基于图像处理技术的岩体裂隙定量识别方法研究[J].地下空间与工程学报, 18(2):446-457.
王琦, 秦乾, 高松, 等, 2018.数字钻探随钻参数与岩石单轴抗压强度关系[J].煤炭学报, 43(5): 1289-1295.
王庆林, 郝俊锁, 沈殿臣, 2012.兰渝铁路梅岭关瓦斯隧道超前钻探施工技术[J].现代隧道技术, 49(4): 89-93, 98.
王旭, 2020.白山市浑江区地质灾害发育特征及成因研究[J].吉林地质, 39(1): 87-91.
王振宇, 程围峰, 刘越, 等, 2010.基于掌子面编录和地质雷达的综合超前预报技术[J].岩石力学与工程学报, 29(S2):3549-3557.
伍汉, 林志, 杨红运, 等, 2021.基于钻孔成像技术的隧道围岩裂隙分析[J].现代隧道技术, 58(S1): 381-386.
席锦州, 周捷, 2012.TRT6000超前地质预报系统在新铜锣山隧道中的运用[J].现代隧道技术, 49(5): 137-141, 150.
许振浩, 李术才, 李利平, 等, 2011a.一种典型的岩溶隧道衬砌压裂突水灾害成因与防治[J].岩石力学与工程学报, 30(7):1396-1404.
许振浩, 李术才, 李利平, 等, 2011b.基于层次分析法的岩溶隧道突水突泥风险评估[J].岩土力学, 32(6): 1757-1766.
许振浩, 李术才, 张庆松, 等, 2008.TSP超前地质预报地震波反射特性研究[J].地下空间与工程学报, (4): 640-644, 716.
许振浩, 马文, 李术才, 等, 2022.岩性识别: 方法、现状及智能化发展趋势[J].地质论评, 68(6): 2290-2304.
许振浩, 马文, 林鹏, 等, 2021.基于岩石图像迁移学习的岩性智能识别[J].应用基础与工程科学学报, 29(5): 1075-1092.
薛东杰, 唐麒淳, 王傲, 等, 2019.基于FCN的岩石混凝土裂隙几何智能识别[J].岩石力学与工程学报, 38(S2):3393-3403.
薛翊国, 李术才, 赵岩, 等, 2009.青岛胶州湾海底隧道F4-4含水断层注浆前后TSP探测分析[J].山东大学学报(工学版), 39(2): 108-112.
杨继华, 闫长斌, 苗栋, 等, 2019.双护盾TBM施工隧洞综合超前地质预报方法研究[J].工程地质学报, 27(2): 250-259.
叶琼瑶, 张军, 赵友超, 等, 2021.岩溶隧道勘察接地源半航空瞬变电磁三维响应规律研究[J].应用基础与工程科学学报, 29(5): 1108-1123.
岳中琦, 2014.钻孔过程监测(DPM)对工程岩体质量评价方法的完善与提升[J].岩石力学与工程学报, 33(10): 1977-1996.
岳中文, 岳小磊, 杨仁树, 等, 2022.随钻岩性识别技术研究进展[J].矿业科学学报, 7(4): 389-402.
张庆松, 李术才, 孙克国, 等, 2008.公路隧道超前地质预报应用现状与技术分析[J].地下空间与工程学报, (4): 766-771.
赵勇, 田四明, 曹哲明, 2009.宜万铁路复杂岩溶隧道施工地质工作方法[J].山东大学学报(工学版), 39(5): 91-95.
《中国公路学报》编辑部, 2015.中国隧道工程学术研究综述·2015[J].中国公路学报, 28(5): 1-65.
钟世航, 孙宏志, 王荣, 等, 2007.隧道掌子面前方地质预报的现状及发展之路[J].工程地球物理学报, (3): 180-185.
Editorial Department of China Journal of Highway and Transport, 2015.Review on China’s tunnel engineering research: 2015[J].China Journal of Highway and Transport, 28(5): 1-65(in Chinese with Englsih abstract).
CAO Ruilang, WANG Yujie, ZHAO Yufei, et al., 2021.In-situ tests on quantitative evaluation of rock mass integrity based on drilling process index[J].Chinese Journal of Geotechnical Engineering, 43(4): 679-687(in Chinese with Englsih abstract).
CHEN Xiangsheng, XU Zhihao, BAO Xiaohua, et al., 2020.Challenges and technological breakthroughs in tunnel construction in China[J].China Journal of Highway and Transport, 33(12):1-14(in Chinese with Englsih abstract).
DENG Mingjiang, XU Zhenhao, LIU Bin, 2021.Establishment and Application of “1 km+100 m+50 m” Geological Prediction System for Extra-Long TBM Tunnels: a Case Study on Water Supply Project Ⅱ in Xinjiang, China[J].Tunnel Construction, 41(9): 1433-1450(in Chinese with Englsih abstract).
DORSEY M T, ROCKWELL T K, GIRTY G H, et al., 2021 Evidence of hydrothermal fluid circulation driving elemental mass redistribution in an active fault zone[J].Journal of Structural Geology, 144: 104269.
DU Yuben, JIANG Liangwen, CHEN Minghao, et al., 2021.Development and prospect of geological surveying technology for railway tunnels in China[J].Tunnel Construction, 41(11):1943-1952(in Chinese with Englsih abstract).
FAN Guangpeng, CHEN Feixiang, CHEN Danyu, et al., 2020.Recognizing Multiple Types of Rocks Quickly and Accurately Based on Lightweight CNNs Model[J].IEEE Access, 8:55269-55278.
GAO Hongke, 2021.Research on in-situ test theory and evaluation method of surrounding rock based on the digital drilling in mine roadway[D].Jinan: Shandong University(in Chinese with Englsih abstract).
GONG Qiuming, YIN Lijun, MA Hongsu, et al., 2016.TBM tunnelling under adverse geological conditions: An overview[J].Tunnelling and Underground Space Technology, 57: 4-17.
HE Mingming, LI Ning, ZHANG Zhiqiang, et al., 2019.An empirical method for determining the mechanical properties of jointed rock mass using drilling energy[J].International Journal of Rock Mechanics and Mining Sciences, 116: 64-74.
HUANG Chunfeng, 2007.Overview of Advance Geological Prediction Technology for Hefei Wuhan Railway Tunnel[J].Railway Standard Design, (S1): 223-226(in Chinese).
HUANG Xin, XU Zhenhao, LIN Peng, et al., 2020.Identification method of water and mud inrush hazard-causing structures in tunnel and its application[J].Journal of Basic Science and Engineering, 28(1): 103-122(in Chinese with English abstract).
HUANG Xiongjun, 2011.Geological Forecast for Cavity at +978 of Malujing Tunnel on Yichang-Wanzhou Railway[J].Modern Tunnelling Technology, 48(1): 128-132(in Chinese with English abstract).
ELDERT J V, SCHUNNESSON H, JOHANSSON D, et al., 2019.Application of measurement while drilling technology to predict rock mass quality and rock support for tunnelling[J].Rock Mechanics and Rock Engineering, 53: 1349-1358.
PARK J, LEE K H, PARK J, et al., 2016.Predicting anomalous zone ahead of tunnel face utilizing electrical resistivity: I.Algorithm and measuring system development[J].Tunnelling and Underground Space Technology, 60: 141-150.
LI Pengyun, NIE Wen, CHEN Wen, et al., 2009.A summary of initial rock mass stress field and construction for pumped storage power station[J].Journal of Yangtze River Scientific Research Institute, 26(8): 59-64(in Chinese with Englsih abstract).
LI Shucai, LIU Bin, LI Shuchen, et al., 2011.Study of advanced detection for tunnel water-bearing geological structures with induced polarization method[J].Chinese Journal of Rock Mechanics and Engineering, 30(7): 1297-1309(in Chinese with Englsih abstract).
LI Shucai, LIU Bin, SUN Huaifeng, et al., 2014.State of art and trends of advanced geological prediction in tunnel construction[J].Chinese Journal of Rock Mechanics and Engineering, 33(6): 1090-1113(in Chinese with Englsih abstract).
LI Shucai, LIU Bin, XU Xinji, et al., 2017.An overview of ahead geological prospecting in tunneling[J].Tunnelling and Underground Space Technology, 63: 69-94.
LI Shucai, LIU Hongliang, LI Liping, et al., 2017.A quantitative method for rock structure at working faces of tunnels based on digital images and its application[J].Chinese Journal of Rock Mechanics and Engineering, 36(1): 1-9(in Chinese with Englsih abstract).
LI Shucai, NIE Lichao, LIU Bin, 2018.The practice of forward prospecting of adverse geology applied to hard rock TBM tunnel construction: The case of the Songhua River Water Conveyance Project in the middle of Jilin Province[J].Engineering, 4(1): 131-137.
LI Shucai, XU Zhenhao, DU Yuchao, 2019.Hazard-causing system and assessment of water and mud inrush in tunnel[M].Beijing: Science Press(in Chinese).
LI Shucai, XU Zhenhao, HUANG Xin, et al., 2018.Classification, geological identification, hazard mode and typical case studies of hazard-causing structures for water and mud inrush in tunnels[J].Chinese Journal of Rock Mechanics and Engineering, 37(5): 1041-1069(in Chinese with Englsih abstract).
LI Tianbin, 2008.Failure characteristics and influence factor analysis of mountain tunnels at epicenter zones of great Wenchuan earthquake[J].Journal of Engineering Geology, 16(6): 742-750(in Chinese with Englsih abstract).
LI Yao, LI Shucai, LIU Bin, et al., 2017.Forward simulation and complex signal analysis of borehole radar detection for underground adverse geological bodies[J].Rock and Soil Mechanics, 38(1): 300-308(in Chinese with Englsih abstract).
LI Zhiyi, 1994.Introduction to Engineering Geology[M].Wuhan:China University of Geosciences Press(in Chinese).
LI Zhongquan, LIU Shun, XU Kaili, et al., 2010.Structural geology[M].Beijing: Geological Publishing House(in Chinese).
LI Jiaming, TANG Shibin, LI Kunyao, et al., 2022.Automatic recognition and classification of microseismic waveforms based on computer vision[J].Tunnelling and Underground Space Technology, 121: 104327.
LIN Aiming, YAMASHITA K, 2013.Spatial variations in damage zone width along strike-slip faults: An example from active faults in southwest Japan[J].Journal of Structural Geology, 57:1-15.
LIN Peng, SHAO Ruiqi, XU Zhenhao, et al., 2023.Integrated fault identification in granite tunnel based on the analysis of structural and mineral characteristics of rock masses: a case study[J].Quarterly Journal of Engineering Geology and Hydrogeology, 56(2): qjegh2022-053.
LIN Peng, XU Guanglu, XU Zhenhao, et al., 2021.Rapid Identification of Alteration Zone Based on In-situ Spectral Testing of Rock Mineral in Tunnelling[J].Journal of Basic Science and Engineering, 29(5): 1093-1107(in Chinese with Englsih abstract).
LIU Bin, LI Shucai, LI Shuchen, et al., 2009.Study of advanced detection of water-bearing geological structures with DC resistivity method[J].Rock and Soil Mechanics, 30(10):3093-3101(in Chinese with English abstract).
LIU Fumin, 2022.Identification and prediction for adverse geology based on geochemical anomaly of tunnel surrounding rock and its engineering application[D].Jinan: Shandong University(in Chinese with Englsih abstract).
LIU Guangya, 1979.Bedrock groundwater[M].Beijing: Geological Publishing House(in Chinese).
LIU Yangfei, LI Tianbin, MENG Lubo, 2018.Analysis of applicability of tunnel advanced geological forecast method[J].Chinese Journal of Engineering Geophysics, 15(6): 804-811(in Chinese with Englsih abstract).
LIU Zhengyu, LI Shucai, LIU Bin, et al., 2017.3D cross-hole resistivity inversion imaging of surrounding rock based on distance weighting constraint algorithm[J].Chinese Journal of Geotechnical Engineering, 39(4): 652-661(in Chinese with Englsih abstract).
LUO Lirui, LIU Zhi-ang, YAN Yi-hong, 2011.The concept and development of geological prediction system[J].Rock and Soil Mechanics, 32(S1): 614-618(in Chinese with Englsih abstract).
NIE Lichao, 2015.Quantitative identification theory and its application of advanced geological prediction for water-bearing structure using induced polarization in tunnel construction period[J].Chinese Journal of Rock Mechanics and Engineering, 34(11): 2374(in Chinese).
PAN D D, LI Y H, LIN C J, et al., 2023.Intelligent rock fracture identification based on image semantic segmentation: methodology and application[J].Environmental Earth Sciences, 82(3): 71.
PAN Dongdong, LI Shucai, XU Zhenhao, et al., 2019.A deterministic-stochastic identification and modelling method of discrete fracture networks using laser scanning: Development and case study[J].Engineering Geology, 262: 105310.
QIAN Qihu, 2017.Main developments and directions of geological prediction and informatized technology of tunnel construction[J].Tunnel Construction, 37(3): 251-263(in Chinese with Englsih abstract).
QIU Daohong, LI Shucai, XUE Yiguo, et al., 2014.Advanced prediction of surrounding rock classification based on digital drilling technology and QGA-RBF neural network[J].Rock and Soil Mechanics, 35(7): 2013-2018(in Chinese with Englsih abstract).
SALVINI R, FRANCIONI M, RICCUCCI S, et al., 2011.Stability analysis of ‘‘Grotta delle Felci’’ Cliff (Capri Island, Italy):structural, engineering-geological, photogrammetric surveys and laser scanning[J].Bulletin of Engineering Geology and the Environment, 70: 549-557.
KALANTARI S, BAGHBANAN A, HASHEMALHOSSEINI H, 2019.An analytical model for estimating rock strength parameters from small-scale drilling data[J].Journal of Rock Mechanics and Geotechnical Engineering, 11(1): 135-145.
SHI Shaoshuai, BU Lin, LI Shucai, et al., 2017.Application of comprehensive prediction method of water inrush hazards induced by unfavourable geological body in high risk karst tunnel: a case study[J].Geomatics, Natural Hazards and Risk, 8(2): 1407-1423.
SHI Xuesong, 2020.An identification method for adverse geology in tunnels based on anomaly analysis of element and mineral[D].Jinan: Shandong University(in Chinese with Englsih abstract).
SHU Liangshu, 2011.Physical geology[M].Beijing: Geological Publishing House(in Chinese).
TAN Zhuoying, LI Wen, YUE Pengjun, et al., 2015.Techniques and approaches for identification of geo-formation structure based on diamond drilling parameters[J].Chinese Journal of Geotechnical Engineering, 37(7): 1328-1333(in Chinese with Englsih abstract).
WANG Hu, LIN Hang, CAO Ping, 2017.Correlation of UCS Rating with Schmidt Hammer Surface Hardness for Rock Mass Classification[J].Rock Mechanics and Rock Engineering, 50(1): 195-203.
WANG Jinchao, TAO Dongxin, HUANG Yanqing, et al., 2019.Borehole imaging method based on ultrasonic synthetic aperture technology[J].Rock and Soil Mechanics, 40(S1):557-564(in Chinese with Englsih abstract).
WANG JunXiang, ZENG Xiangsen, XU Chenhui, et al., 2022.Study on Quantitative Identification Method of Rock Fracture Based on Image Processing Technology[J].Chinese Journal of Underground Space and Engineering, 18(2): 446-457(in Chinese with Englsih abstract).
WANG Qi, GAO Hongke, JIANG Bei, et al., 2021.In-situ test and bolt-grouting design evaluation method of underground engineering based on digital drilling[J].International Journal of Rock Mechanics and Mining Sciences, 138: 104575.
WANG Qi, QIN Qian, GAO Song, et al., 2018.Relationship between rock drilling parameters and rock uniaxial compressive strength based on energy analysis[J].Journal of China Coal Society, 43(5): 1289-1295(in Chinese with Englsih abstract).
WANG Qinglin, HAO Junsuo, SHEN Dianchen, 2012.Construction techniques for advance drilling in the Meilingguan Gas Tunnel on the Lanzhou-Chongqing Railway[J].Modern Tunnelling Technology, 49(4): 89-93, 98(in Chinese with English abstract).
WANG Xu, 2020.Study on the development characteristics and causes of geological disasters in Hunjiang District of Baishan City[J].Jilin Geology, 39(1): 87-91(in Chinese with Englsih abstract).
WANG Zhenyu, CHENG Weifeng, LIU Yue, et al., 2010.Synthetic advanced forecast technique based on geological logging for tunnel face and ground penetrating radar[J].Chinese Journal of Rock Mechanics and Engineering, 29(S2):3549-3557(in Chinese with Englsih abstract).
WU Han, LIN Zhi, YANG Hongyun, et al., 2021.Analysis of fissures in tunnel surrounding rock based on borehole imaging technology[J].Modern Tunnelling Technology, 58(S1):381-386(in Chinese with English abstract).
XI Jinzhou, ZHOU Jie, 2012.Application of the TRT6000 geological prediction system in the construction of the New Tongluoshan Tunnel[J].Modern Tunnelling Technology, 49(5):137-141, 150(in Chinese with English abstract).
XU Xinji, ZHANG Panlong, GUO Xu, et al., 2021.A case study of seismic forward prospecting based on the tunnel seismic while drilling and active seismic methods[J].Bulletin of Engineering Geology and the Environment, 80: 3553-3567.
XU Zhenhao, LI Shucai, LI Liping, et al., 2011.Cause, disaster prevention and controlling of a typical kind of water inrush and lining fracturing in karst tunnels[J].Chinese Journal of Rock Mechanics and Engineering, 30(7): 1396-1404(in Chinese with Englsih abstract).
XU Zhenhao, LI Shucai, LI Liping, et al., 2011.Risk assessment of water or mud inrush of karst tunnels based on analytic hierarchy process[J].Rock and Soil Mechanics, 32(6):1757-1766(in Chinese with Englsih abstract).
XU Zhenhao, LI Shucai, ZHANG Qingsong, et al., 2008.Reflection characteristic of seismic wave in TSP advance geolgical prediction[J].Chinese Jounal of Underground Space and Engineering, (4): 640-644, 716(in Chinese with Englsih abstract).
XU Zhenhao, LIU Fumin, LIN Peng, et al., 2021a.Non-destructive, in-situ, fast identification of adverse geology in tunnels based on anomalies analysis of element content[J].Tunnelling and Underground Space Technology, 118: 104146.
XU Zhenhao, MA Wen, LIN Peng, et al., 2021b.Deep learning of rock images for intelligent lithology identification[J].Computers & Geosciences, 154: 104799.
XU Zhenhao, WANG Wenyang, LIN Peng, et al., 2021c.Hard-rock TBM jamming subject to adverse geological conditions: Influencing factor, hazard mode and a case study of Gaoligongshan Tunnel[J].Tunnelling and Underground Space Technology, 108: 103683.
XU Zhenhao, MA Wen, LI Shucai, et al., 2022.Lithology identification: Method, research status and intelligent development trend[J].Geological Review, 68(6): 2290-2304(in Chinese with English abstract).
XU Zhenhao, MA Wen, LIN Peng, et al., 2021.Intelligent Lithology Identification Based on Transfer Learning of Rock Images[J].Journal of Basic Science and Engineering, 29(5):1075-1092(in Chinese with English abstract).
XU Zhenhao, SHI Heng, LIN Peng, et al., 2022.Intelligent On-Site Lithology Identification Based on Deep Learning of Rock Images and Elemental Data[J].IEEE Geoscience and Remote Sensing Letters, 19.
XU Zhenhao, YU Tengfei, LIN Peng, et al., 2023a.Anomalous patterns of clay minerals in fault zones[J].Engineering geology, 325: 107279.
XU Zhenhao, YU Tengfei, LIN Peng, et al., 2023b.Adverse Geology Identification Through Mineral Anomaly Analysis During Tunneling: Methodology and Case Study[J/OL].Engineering, [2023-02-15].https://doi.org/10.1016/j.eng.2022.09.013.
XUE Dongjie, TANG Qichun, WANG Ao, et al., 2019.FCN-based intelligent identification of crack geometry in rock or concrete[J].Chinese Journal of Rock Mechanics and Engineering, 38(S2): 3393-3403(in Chinese with Englsih abstract).
XUE Yiguo, LI Shucai, ZHAO Yan, et al., 2009.Analysis on TSP prediction before and after grouting about water-burst fault F4-4 of subsea tunnel in Qingdao Jiaozhou Bay[J].Journal of Shandong University(Engineering Science), 39(2): 108-112(in Chinese with Englsih abstract).
ASHIDA Y, 2001.Seismic imaging ahead of a tunnel face with three-component geophones[J].International Journal of Rock Mechanics and Mining Sciences, 38(6): 823-831.
YAŞAR E, RANJITH P G, VIETE D R, 2011.An experimental investigation into the drilling and physico-mechanical properties of a rock-like brittle material[J].Journal of Petroleum Science and Engineering, 76(3-4): 185-193.
YANG Jihua, YAN Changbin, MIAO Dong, et al., 2019.Comprehensive advanced geological prediction methods for tunnel construction with double sheild TBM[J].Journal of Engineering Geology, 27(2): 250-259(in Chinese with Englsih abstract).
YE Qiongyao, ZHANG Jun, ZHAO Youchao, et al., 2021.Study on the Three-dimensional Response Law of Semi-airborne Transient Electromagnetic of Grounding Source for Karst Tunnel Investigation[J].Journal of Basic Science and Engineering, 29(5): 1108-1123(in Chinese with Englsih abstract).
YUE Zhongqi, 2014.Drilling process monitoring for refining and upgrading rock mass quality classification methods[J].Chinese Journal of Rock Mechanics and Engineering, 33(10):1977-1996(in Chinese with Englsih abstract).
YUE Zhongwen, YUE Xiaolei, YANG Renshu, et al., 2022.Progress of lithology identification technology while drilling[J].Journal of Mining Science and Technology, 7(4): 389-402(in Chinese with Englsih abstract).
ZHANG Qiangyong, REN Mingyang, DUAN Kang, et al., 2019.Geo-mechanical model test on the collaborative bearing effect of rock-support system for deep tunnel in complicated rock strata[J].Tunnelling and Underground Space Technology, 91:103001.
ZHANG Qingsong, LI Shucai, SUN Keguo, et al., 2008.Analysis and present state of advanced geological forecast technology of highway tunnel[J].Chinese Journal of Underground Space and Engineering, (4): 766-771(in Chinese with English abstract).
ZHAO Yong, TIAN Siming, CAO Zheming, 2009.Geological work method for the construction of the Yichang-Wanzhou Railway tunnel in high-risk karst areas[J].Journal of Shandong University(Engineering Science), 39(5): 91-95(in Chinese with Englsih abstract).
ZHONG Shihang, SUN Hongzhi, WANG Rong, et al., 2007.The present situation of the geological prediction in front of tunnel face and its development[J].Chinese Journal of Engineering Geophysics, (3): 180-185(in Chinese with Englsih abstract).
ZHU Weiwei, HE Xupeng, SANTOSO R K, et al., 2022.Enhancing fracture network characterization: A data-driven, outcrop-based analysis[J].Computers and Geotechnics, 152:104997.
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