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Identification of Primary Failure Modes of Tunnel System and Influence of Supporting Structures on Tunnel System Reliability using Multiple Response Surfaces

机译:基于多响应面的隧道系统一次失效模式识别及支护结构对隧道系统可靠性的影响

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摘要

A method of calculating the failure probability of the tunnel system combining finite element numerical simulation with multiple response surface method (MRSM) and Monte-Carlo simulation (MCS) is presented. The applicability of the proposed methodology is verified through a subway interval soft rock tunnel in Qingdao, China. The sensitivity of Monte-Carlo sampling number and coefficients of variation for rock masses on the failure probability of tunnel system is conducted. The primary failure modes in tunnel system are identified by reanalyzing the failure samples. The simulation results demonstrate that the failure probability of a tunnel system within soft upper and hard lower surrounding rock mass is mainly attributed to the soft upper part of the surrounding rock. The coefficients of variation of the elastic modulus E_1 and the internal friction angle of the pebble layer (soft upper part) have significant effect on the failure probability. The failure probability of tunnel system increases as the coefficients of variation of E_1 and φ_1 increase. Two primary failure modes are found to contribute to the tunnel system reliability. The effect of rock bolt length L and pipe-roof thickness H on tunnel system reliability and two primary failure modes as well are investigated. The simulation results indicate that both the enhancements in L and H tend to be more effective than the enhancement in either L or H if a small target failure probability of tunnel system is expected. The supporting structures design can be performed based on the potential sets of (L, H) satisfying target failure probability.
机译:提出了一种结合有限元数值模拟、多响应面法(MRSM)和蒙特卡罗模拟(MCS)的隧道系统破坏概率计算方法。通过青岛地铁间隔软岩隧道验证了所提方法的适用性。研究了蒙特卡洛采样数和岩体变异系数对隧道系统破坏概率的敏感性。通过对破坏样本的重新分析,确定了隧道系统中的主要破坏模式。模拟结果表明,上软下部围岩体内隧道系统的破坏概率主要归因于围岩的软上部。弹性模量E_1的变异系数和卵石层(软上部)的内摩擦角对破坏概率有显著影响。隧道系统的破坏概率随着E_1和φ_1变异系数的增大而增大。研究发现,两种主要的故障模式有助于提高隧道系统的可靠性。研究了锚杆长度L和管顶厚度H对隧道系统可靠性和两种主要破坏模式的影响。仿真结果表明,如果隧道系统的目标破坏概率较小,则L和H的增强往往比L或H的增强更有效。可以基于满足目标破坏概率的势集(L,H)进行支护结构设计。

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