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A new classification of failure mechanisms at tunnels in stratified rock masses through physical and numerical modeling

机译:层状岩体隧道破坏机理的物理数值模拟新分类

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摘要

Stability of tunnels in stratified rock masses under low stress conditions is governed by the rock mass structure (blocks) and excavation geometry and dimension. A physical model was built and the effects of bedding dip, discontinuity spacing, and tunnel dimensions on tunnel failure mechanisms were examined. Based on the image analysis, three zones were recognized around the excavation consisting: stationary, collapsed and buckling zones. The buckling zone was more affected by layer dip angle. The collapsed zone occurred in three modes of block falls and sliding, and toppling. Also, numerical simulation using distinct element method was performed and verified. After model calibration, numerical simulations were extended to a wide range of block size and discontinuity gradients. Finally, considering physical test results, image analysis, and numerical simulation results, failure mechanisms in stratified rocks were classified using "bedding dip" and so called "dimensional ratio". Results lead us to a deep insight of ground behavior around the shallow underground excavations in stratified blocky rock masses under low stress condition. Additionally the deformation mechanisms of blocks such as buckling, shearing, sliding are discussed in detail.
机译:在低应力条件下,分层岩体中隧道的稳定性受岩体结构(块体)以及开挖几何形状和尺寸的控制。建立了物理模型,并研究了层理倾角,不连续间距和隧道尺寸对隧道破坏机理的影响。根据图像分析,在开挖周围识别出三个区域:固定区域,塌陷区域和屈曲区域。屈曲区受层倾角的影响更大。塌陷区以块状坠落,滑动和倾覆三种方式发生。此外,执行并验证了使用不同元素方法的数值模拟。在模型校准之后,数值模拟扩展到了大范围的块大小和不连续性梯度。最后,考虑物理测试结果,图像分析和数值模拟结果,使用“层倾角”和所谓的“尺寸比”对分层岩石的破坏机理进行了分类。结果使我们对低应力条件下分层块状岩体中浅层地下开挖周围的地面行为有了深刻的了解。此外,还详细讨论了块的变形机制,例如屈曲,剪切,滑动。

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