Study on anti-dislocation design parameters of tunnel structure with flexible joints crossing fault based on simplified analytical method

IF 4.6 2区 工程技术 Q1 ENGINEERING, GEOLOGICAL Soil Dynamics and Earthquake Engineering Pub Date : 2025-04-01 Epub Date: 2025-01-27 DOI:10.1016/j.soildyn.2025.109243
Mingyu Chang , Yusheng Shen , Haokang Wang , Xiaohai Pan , X. Zhang , Cheng Di , Y. Luo
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Abstract

The tunnel structure is susceptible to shear failure due to fault dislocation action, particularly in regions with high seismic activity. To mitigate this risk, the use of tunnel segmental lining and flexible joints has been identified as an effective anti-dislocation strategy. However, the design of these components lacks available analytical solutions. To address this gap, a simplified longitudinal beam-spring tunnel model has been developed to assess the longitudinal response of tunnel structures, incorporating the splaying and staggering deformations at flexible joints. The virtual node method is employed to efficiently solve the problem of discontinuous deformation at these joints.
An analytical solution for the longitudinal response of tunnels with flexible joints subjected to fault dislocation is derived utilizing the established governing equations, continuity conditions at the flexible joints and boundary conditions. The validity of the proposed solution is confirmed through comparisons with results from model tests and numerical simulations. Subsequently, a sensitivity analysis is conducted to explore the effects of segmental lining length, flexible joint parameters, and fault zone width. The findings reveal that flexible joints significantly enhance the anti-dislocation capability of tunnel structures, reducing the longitudinal strain of tunnel linings by 57.68 %. Furthermore, the anti-dislocation performance can be further improved by decreasing the stiffness of the flexible joints. Notably, the flexible joints located at the interface between the fault zone and the moving or fixed block endure the most shear and rotational deformations. Additionally, a negative correlation is observed between the required width of flexible joints and the length of segmental lining.
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基于简化解析法的柔性接头穿越断层隧道结构防位错设计参数研究
由于断层错位的作用,隧道结构容易发生剪切破坏,特别是在地震活动频繁的地区。为了降低这种风险,使用隧道分段衬砌和柔性关节被认为是一种有效的防错位策略。然而,这些组件的设计缺乏可用的分析解决方案。为了解决这一问题,我们开发了一种简化的纵向梁-弹簧隧道模型来评估隧道结构的纵向响应,该模型考虑了柔性节点的伸展变形和交错变形。采用虚拟节点法有效地解决了这些节点的不连续变形问题。利用所建立的控制方程、柔性节理连续条件和边界条件,导出了断层位错作用下含柔性节理隧道纵向响应的解析解。通过与模型试验和数值模拟结果的比较,验证了该方法的有效性。随后,对分段衬砌长度、柔性节理参数和断裂带宽度的影响进行了敏感性分析。研究结果表明,柔性接头可显著提高隧道结构的抗位错能力,使隧道衬砌纵向应变降低57.68%。此外,降低柔性关节的刚度可以进一步提高其抗位错性能。值得注意的是,位于断裂带与活动或固定块体界面的柔性节理承受的剪切和旋转变形最多。此外,观察到柔性接头所需宽度与节段衬砌长度之间的负相关关系。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Soil Dynamics and Earthquake Engineering
Soil Dynamics and Earthquake Engineering 工程技术-地球科学综合
CiteScore
7.50
自引率
15.00%
发文量
446
审稿时长
8 months
期刊介绍: The journal aims to encourage and enhance the role of mechanics and other disciplines as they relate to earthquake engineering by providing opportunities for the publication of the work of applied mathematicians, engineers and other applied scientists involved in solving problems closely related to the field of earthquake engineering and geotechnical earthquake engineering. Emphasis is placed on new concepts and techniques, but case histories will also be published if they enhance the presentation and understanding of new technical concepts.
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