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A finite strain numerical procedure for a circular tunnel in strain-softening rock mass with large deformation

机译:大变形循环隧道圆形隧道有限应变数值

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The reliable prediction of excavation responses for squeezing rock remains a challenging issue in rock engineering. This paper presents a numerical procedure for a strain-softening rock mass around highly deformed circular opening based on the finite strain theory, so the overall elasto-plastic analysis is a Lagrangian method which focuses on the motion of each material point and is well suited for the problems involving large deformation. The influence of axial in-situ stress is considered by introducing the initial axial stress into the elastic constitutive equations, and the axial plastic flow is realized by redefining the plastic internal variable and considering different stress distributions in the plastic zone. Thus, the numerical procedure enables prediction of the rock deformation and squeezing potential in a more rational and rigorous manner. The capability of the method for estimating the small strain and squeezing deformation is verified by being compared with the existing analytical results and the field measuring data. Negligence of the axial in-situ stress or the axial plastic flow underestimates the rock deformation, and the induced deviation essentially depends on the post-peak constitutive relation and the rock heterogeneity after rock yields. The higher level of the material homogeneity in the plastic zone, the lower effects of the axial in-situ stress on the rock responses. The stress distribution and strain-softening behavior of surrounding rock can be significantly affected by the axial in-situ stress and the critical plastic internal variable eta*. Tunnel instability is independent of large deformation for the high eta* but is closely associated with the squeezing problem when eta* is small. As eta* decreases, both of the plastic radius and wall convergence increase initially and remain constant afterwards. Lastly, the paper investigates the rock responses and ground-support interaction when the small strain theory is applied on the squeezing rock.
机译:挤压岩石的挖掘反应的可靠预测仍然是岩石工程中有挑战性的问题。本文提出了一种基于有限应变理论的高变形圆形开口围绕高变形圆形开口的应变软化岩体的数值过程,因此整体弹性塑性分析是一种侧重式方法,专注于每个材料点的运动,非常适合涉及大变形的问题。通过将初始轴向应力引入弹性本构体方程来考虑轴向原位应力的影响,并且通过重新定义塑料内部变量并考虑塑料区中的不同应力分布来实现轴向塑料流动。因此,数值过程使得能够以更合理和严格的方式预测岩石变形和挤压电位。通过与现有的分析结果和现场测量数据进行比较来验证估计小应变和挤压变形的方法的能力。轴向原位应力或轴向塑料流动的疏忽低估了岩石变形,并且诱导偏差基本上取决于岩石产量后的峰值构成关系和岩石异质性。塑料区中材料均匀性较高,轴向原位应力对岩石反应的较低效果。周围岩石的应力分布和菌株软化行为可受到轴向原位应力和临界塑料内部变量ETA *的显着影响。隧道不稳定性与高ETA *的大变形无关,但在ETA *小时与挤压问题密切相关。作为ETA *降低,塑料半径和壁收敛的两者最初增加并且之后保持恒定。最后,当挤压岩石上施加小应变理论时,研究了岩石响应和地支撑相互作用。

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