山东大学学报 (工学版) ›› 2025, Vol. 55 ›› Issue (5): 165-178.doi: 10.6040/j.issn.1672-3961.0.2024.256
• 土木工程 • 上一篇
刘启明1,王文辉1,潘英楠1,高要辉2,郑程程3,贺鹏3*
LIU Qiming1, WANG Wenhui1, PAN Yingnan1, GAO Yaohui2, ZHENG Chengcheng3, HE Peng3*
摘要: 为探究混凝土厚度缺陷对初支结构造成的损害,以实际工程为背景,考虑厚度缺陷发生的具体位置与范围,对其在隧道中的分布特征进行统计。运用有限元数值模拟,对不同厚度缺陷类型下初支结构的力学特征进行深入分析;采用CRITIC(criteria importance through intercrieria correlation)权重分析法,对影响初支结构安全性的缺陷跨度与位置等风险指标进行综合评价,确定了各指标对结构安全性的影响程度。研究表明,缺陷出现在拱顶位置或缺陷跨度大于25°时,对初支结构安全性影响最大。研究结果可为同类隧道的病害防治提供借鉴和参考。
中图分类号:
| [1] MEGUID M A, DANG H K. The effect of erosion voids on existing tunnel linings[J]. Tunnelling and Underground Space Technology Incorporating Trenchless Technology Research, 2008, 24(3):278-286. [2] WANG J F, HUANG H W, XIE X Y, et al. Void-induced liner deformation and stress redistribution[J]. Tunnelling and Underground Space Technology Incorporating Trenchless Technology Research, 2014, 40: 263-276. [3] 张志刚, 陈佳, 姬海, 等. 东欧公路隧道复合式衬砌结构设计与实践[J]. 地下空间与工程学报, 2020, 16(增刊1): 127-136. ZHANG Zhigang, CHEN Jia, JI Hai, et al. Design and practice of composite lining structure on road tunnelin Eastern Europe[J]. Chinese Journal of Underground Space and Engineering, 2020, 16(Suppl.1): 127-136. [4] 张顶立. 隧道及地下工程的基本问题及其研究进展[J]. 力学学报, 2017, 49(1): 3-21. ZHANG Dingli. Essential issues and their research progress in tunnel and underground engineering[J]. Chinese Journal of Theoretical and Applied Mechanics, 2017, 49(1): 3-21. [5] ZHANG X, SU J, XU Y J, et al. Experimental and numerical investigation the effects of insufficient concrete thickness on the damage behaviour of multi-arch tunnels[J]. Structures, 2021, 33: 2628-2638. [6] 宫艳萍. 衬砌厚度不足对隧道结构安全性影响研究[D]. 北京: 北京交通大学, 2019. GONG Yanping. Study on the tunnel structure safety under the impact of the lining thickness deficiency[D]. Beijing: Beijing Jiaotong University, 2019. [7] LU W, SUN H B, ALEJANO L, et al. Study on support characteristic curve of primary support structures in underground excavation considering bond-slip behavior[J]. Advances in Structural Engineering, 2021, 24(3): 1-12. [8] 剧仲林. 直接弹性抗力法及其在隧道初期支护结构计算中的应用[J]. 隧道建设(中英文), 2021, 41(3): 372-387. JU Zhonglin. Direct elastic resistance method and its application to calculation of primary support structure of tunnel[J]. Tunnel Construction, 2021, 41(3): 372-387. [9] 潘凯锋. 观音阁水库输水工程软岩隧洞初期支护厚度优化分析[J]. 东北水利水电, 2019, 37(7): 34-37. PAN Kaifeng.Optimization analysis of initial support thickness of soft rock tunnelfor water conveyance project of Guanyinge reservoir[J]. Water Resources & Hydropower of Northeast, 2019, 37(7): 34-37. [10] 孙润方, 杨凯, 晏启祥, 等. 不同喷射混凝土厚度对隧道围岩变形影响分析[J]. 四川建筑, 2020, 40(6): 115-116. SUN Runfang, YANG Kai, YAN Qixiang, et al. Analysis of the influence of different shotcrete thicknesses on the deformation of tunnel surrounding rock[J].Sichuan Architecture, 2020, 40(6): 115-116. [11] 韩荣杰, 欧湘萍, 闫志濠, 等. 初期支护参数对断层破碎带隧道围岩稳定性的影响研究[J]. 武汉理工大学学报(交通科学与工程版), 2021, 45(2): 330-335. HAN Rongjie, OU Xiangping, YAN Zhihao, et al. Study on the influence of initial support parameters on the stability of tunnel surrounding rock in fault fracture zone[J]. Journal of Wuhan University of Technology(Transportation Science & Engineering), 2021, 45(2): 330-335. [12] 吕鸿, 王建. 隧道爆破冲击对不同厚度初期支护mises应力的影响[J]. 公路, 2016, 61(10): 268-270. LÜ Hong, WANG Jian. Analysis of the influence of tunnel blasting impact on mises stress of initial support with different thicknesses[J]. Highway, 2016, 61(10): 268-270. [13] 李德军, 于程硕, 谢东武. 大跨度城市山岭隧道初期支护参数优化研究[J]. 现代隧道技术, 2020, 57(增刊1): 387-393. LI Dejun, YU Chengshuo, XIE Dongwu. Optimization of initial support parameters of large-span urban mountain tunnels[J]. Modern Tunnelling Technology, 2020, 57(Suppl.1): 387-393. [14] ZHANG M M, ZHANG X D. Application of ground penetrating radar in tunnel concrete lining quality detection[J]. Advanced Materials Research, 2015, 3696: 1065-1069. [15] FENG D S, WANG X, ZHANG B. Improving reconstruction of tunnel lining defects from ground-penetrating radar profiles by multi-scale inversion and bi-parametric full-waveform inversion[J]. Advanced Engineering Informatics, 2019, 41: 100931. [16] 胡群芳, 周博文, 王飞, 等. 基于模糊层次分析的公路隧道结构安全评估技术[J]. 自然灾害学报, 2018, 27(4): 41-49. HU Qunfang, ZHOU Bowen, WANG Fei, et al. Structural safety assessment technology of long highway tunnel based on fuzzy analytic hierarchy process[J]. Journal of Natural Disasters, 2018, 27(4): 41-49. [17] 周兵, 王传生, 刘芳亮, 等. 城市交通隧道运营安全风险评估模型及管理系统研究[J]. 公路交通科技, 2021, 38(1): 97-103. ZHOU Bing, WANG Chuansheng, LIU Fangliang, et al. Study on risk assessment model and management system for urban traffic tunnel operation safety[J]. Journal of Highway and Transportation Research and Development, 2021, 38(1): 97-103. [18] SOUSA R L, EINSTEIN H H. Risk analysis during tunnel construction using Bayesian networks: Porto Metro case study[J]. Tunnelling and Underground Space Technology Incorporating Trenchless Technology Research, 2012, 27(1):86-100. [19] 吴贤国, 刘茜, 陈虹宇, 等. 基于模糊贝叶斯证据理论的盾构下穿既有隧道安全风险评价[J]. 隧道建设(中英文), 2021, 41(5): 713-720. WU Xianguo, LIU Xi, CHEN Hongyu, et al. Preassessment of safety risk of shield tunneling underneath existing tunnel based on fuzzy Bayesian networks and evidence theory[J]. Tunnel Construction, 2021, 41(5): 713-720. [20] SUN J J, SHI L, SHEN Y, et al. Research on the safety risk management of the operation of the long river-crossing tunnels based on fuzzy analytic hierarchy process evaluation method[C] // Processdings of CICTP 2021. Xi'an, China: ASCE, 2021: 1118-1129. [21] ZHOU B, WANG C S, LIU F L, et al. Whole risk assessment system and management system of urban road tunnel operation stage[J]. Journal of Highway and Transportation Research and Development(English Edition), 2020, 14(1): 94-101. [22] LIN C J, ZHANG M, LI L P, et al. Risk assessment of tunnel construction based on improved cloud model[J]. Journal of Performance of Constructed Facilities, 2020, 34(3): 1-13. [23] XIAO M W, CHANG D H, LI J Z. Study on multi-level safety risk assessment of two-line three-step construction of long-span shallow buried and hidden excavation tunnel[C] //Processdings of ICCREM 2021.Beijing, China: ASCE, 2021: 73-84. [24] 中华人民共和国水利部. 工程岩体分级标准:GB/T50218—2014[ S]. 北京: 中国计划出版社, 2014. |
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