Viscoelastic plastic interaction of tunnel support and strain-softening rock mass considering longitudinal effect

Chen Xu , Sheng Wang , Caichu Xia , Lei Liu , Zhifu Ma , Jun Yang
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Abstract

A simplified two-stage method was employed to provide an explicit solution for the time-dependent tunnel-rock interaction, considering the generalized Zhang-Zhu strength criterion. Additionally, a simplified mechanical model of the yielding support structure was established. The tunnel excavation is simplified to a two-stage process: the first stage is affected by the longitudinal effect, while the second stage is affected by rheological behavior. Two cases are considered: one is that the rigid support is constructed during the first stage, and the other is that constructed at the second stage. Distinguished by the support timing at the seconde stage, different kinds of the “yield-resist combination” support method are divided into three categories: “yield before resist” support, “yield-resist” support, and “control-yield-resist” support. Results show that the support reaction of “control-yield-resist” is much higher than that of “yield before resist” if the initial geostress is not very high, but the effect is not obvious on controlling the surrounding rock deformation. So, the “yield before resist” support is much more economical and practical when the ground stress is not very high. However, under high geostress condition, through applying relatively high support reaction actively to surrounding rock at the first stage, the “control-yield-resist” support is superior in controlling the deformation rate of surrounding rock. Therefore, in the high geostress environment, it is recommended to construct prestressed yielding anchor immediately after excavation, and then construct rigid support after the surrounding rock deformation reaches the predetermined deformation.

考虑纵向效应的隧道支护与应变软化岩体的粘弹性塑性相互作用
考虑到广义张柱强度准则,采用简化的两阶段法为随时间变化的隧道-岩石相互作用提供了明确的解决方案。此外,还建立了屈服支护结构的简化力学模型。隧道开挖被简化为两个阶段:第一阶段受纵向效应影响,第二阶段受流变行为影响。考虑了两种情况:一种是在第一阶段建造刚性支护,另一种是在第二阶段建造刚性支护。根据第二阶段的支撑时间,不同的 "屈服-抵抗组合 "支撑方法可分为三类:"先屈服后抵抗 "支撑、"先抵抗后屈服 "支撑和 "先屈服后抵抗 "支撑:"先屈后抗 "支撑法、"屈-抗 "支撑法和 "控-屈-抗 "支撑法。结果表明,在初始地应力不是很高的情况下,"控制-屈服-抵抗 "的支护反力远高于 "先屈服后抵抗 "的支护反力,但对控制围岩变形的效果不明显。因此,在地应力不是很高的情况下,"先屈后抗 "支护更为经济实用。但在高地应力条件下,通过在第一阶段对围岩主动施加相对较高的支撑反力,"控制-屈服-抵抗 "支撑在控制围岩变形率方面更具优势。因此,在高地质应力环境下,建议在开挖后立即施工预应力屈服锚杆,待围岩变形达到预定变形后再施工刚性支护。
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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CiteScore
2.40
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