Influences of aquiclude on external water pressures on linings of deep-buried tunnels
XIE Xiao-shuai1,2, XIE Xing-hua2, WANG Xiao-dong2, LU Bin2, WANG Meng1, CHEN Hua-song3
1. State Key Laboratory of Hydraulics and Mountain River Engineering, College of Water Resources and Hydropower, Sichuan University, Chengdu 610065, China; 2. Nanjing Hydraulic Research Institute, State Key Laboratory of Hydrology-Water Resources and Hydraulic Engineering, Nanjing 210029, China; 3. Yunnan Institute of Water & Hydropower Engineering Investigation, Design and Research, Kunming 650021, China;
Abstract:At present, the theoretical formulas for calculating the external water pressures are mostly for homogeneous surrounding rocks. When there is a strong aquiclude in stratum, the calculated results are larger than the actual pressures, which will lead to the problems of large thickness of lining structures and overestimation of project budget. In order to make the design of lining structures and selection of parameters more reasonable and economical, combined with the deep-buried long diversion tunnel of Dali Section II of Middle Yunnan Water Diversion Project, by using the numerical simulation method and selecting three characteristic points on the outer surface of the linings, the sensitivity analysis of the position height and thickness of the aquiclude in overlying strata and the relative permeability of surrounding rocks are performed, and the variation laws of the external water pressures on linings are investigated. The results show that the external water pressures on the linings decrease with the increase of the height of the aquiclude, but the change is not significant. The thickness of the aquiclude is the key factor affecting the external water pressures on the linings, and the external water pressures on the linings decrease significantly with the increase of the thickness of the aquiclude. The external water pressures on the linings increase with the ratio of the surrounding rocks to the permeability coefficient of the aquiclude. When the relative permeability increases to a certain value, the aquiclude bears most of the head pressures, and the external water pressures on the linings decrease to a certain extent and gradually stabilize. The research results may provide reference for lining design of deep-buried long tunnels with aquicludes in strata.
谢小帅, 谢兴华, 王小东, 卢斌, 王猛, 陈华松. 隔水层对深埋隧洞衬砌外水压力的影响研究[J]. 岩土工程学报, 2020, 42(s2): 146-150.
XIE Xiao-shuai, XIE Xing-hua, WANG Xiao-dong, LU Bin, WANG Meng, CHEN Hua-song. Influences of aquiclude on external water pressures on linings of deep-buried tunnels. Chinese J. Geot. Eng., 2020, 42(s2): 146-150.
[1] 叶甜. 岩溶区深埋隧道衬砌外水压力研究[D]. 杭州: 浙江大学, 2015. (YE Tian.Study on External Water Pressure of Deep-Buried Tunnel Lining in Karst Areas[D]. Hangzhou: Zhejiang University, 2015. (in Chinese)) [2] 高新强. 高水压山岭隧道衬砌水压力分布规律研究[D]. 成都: 西南交通大学, 2005. (GAO Xin-qiang.Research on the Distribution Law of Water Pressure in Lining of High Water Pressure Mountain Tunnel[D]. Chengdu: Southwest Jiaotong University, 2005. (in Chinese)) [3] 庄宁, 阚二林, 邓明镜. 隧道衬砌外水压力确定的渗流场—应力场耦合模型研究[J]. 中南公路工程, 2007, 32(1): 55-59. (ZHUANG Ning, KAN Er-lin, DENG Ming-jing.Analysis of coupled seepage and stress fields model in determining tunnels external water pressure[J]. Central South Highway Engineering, 2007, 32(1): 55-59. (in Chinese)) [4] 周亚峰, 苏凯, 伍鹤皋. 水工隧洞钢筋混凝土衬砌外水压力取值方法研究[J]. 岩土力学, 2014, 35(增刊2): 198-203. (ZHON Ya-feng, SU Kai, WU He-gao.Study on the value of external water pressure of reinforced concrete lining in hydraulic tunnel[J]. Chinese Geotechnical Mechanics, 2014, 35(S2): 198-203. (in Chinese)) [5] 宋岳, 贾国臣, 滕杰. 隧洞外水压力折减系数工程地质研究[J]. 水利水电工程设计, 2007(3): 38-40, 55. (SONG Yue, JIA Guo-chen, TENG Jie. The engineering geological research for the reduction factor of tunnel external water pressure[J]. Design of Water Resources and Hydroelectric Engineering, 2007(3): 38-40, 55. (in Chinese)) [6] 郑波, 王建宇, 吴剑. 基于等效渗透系数计算衬砌水压力方法研究[J]. 现代隧道技术, 2011, 48(6): 43-46, 57.(ZHENG Bo, WANG Jian-yu, WU Jian. Study of the calculation of external water pressure on tunnel lining based on the equivalentpermeability coefficient of the composite lining[J]. Modern Tunneling Technology, 2011, 48(6): 43-46, 57. (in Chinese)) [7] 冯晓成. 高外水深埋隧洞渗控措施分析及衬砌长期稳定性研究[D]. 天津: 天津大学, 2016. (FENG Xiao-cheng.Analysis of Seepage Control Measures and Long-Term Stability of Tunnel Lining Under High External Water Depth[D]. Tianjin: Tianjin University, 2016. (in Chinese)) [8] 刘立鹏, 汪小刚, 贾志欣, 等. 水岩分算隧道衬砌外水压力折减系数取值方法[J]. 岩土工程学报, 2013, 35(3): 495-500. (LIU Li-peng, WANG Xiao-gang, JIA Zhi-xin, et al.Method of calculating water pressure reduction coefficient of tunnel lining with water and rock[J]. Chinese Journal of Geotechnical Engineering, 2013, 35(3): 495-500. (in Chinese)) [9] 彭亚敏, 沈振中, 甘磊. 深埋水工隧洞衬砌渗透压力控制措施研究[J]. 水利水运工程学报, 2018(1): 89-94. (PENG Ya-min, SHEN Zhen-zhong, GAN Lei.Seepage pressure control measures for lining of deep buried hydraulic tunnels[J]. Hydro-Science and Engineering. 2018(1): 89-94. (in Chinese)) [10] 傅睿智, 郭凯, 黄鹤程, 等. 复合衬砌外水压力模型试验研究[J]. 人民长江, 2019, 50(6): 192-197. (FU Rui-zhi, GUO Kai, HUANG He-cheng, et al.Model test study for external water pressure on composite lining[J]. Yangtze River, 2019, 50(6): 192-197. (in Chinese)) [11] ARJNOI P, JEONG J H, KIM C Y, et al.Effect of drainage conditions on porewater pressure distributions and lining stresses in drained tunnels[J]. Tunnelling and Underground Space Technology, 2009, 24(4): 376-389. [12] 李广信. 高等土力学[M]. 北京: 清华大学出版社, 2004. (LI Guang-xin.Advanced Soil Mechanics[M]. Beijing: Tsinghua University Press, 2004. (in Chinese))