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考虑锚杆作用的深埋软岩隧道黏弹塑性力学响应解析
引用本文:赵南南,邵珠山,郑晓蒙,吴奎,秦溯.考虑锚杆作用的深埋软岩隧道黏弹塑性力学响应解析[J].力学学报,2022,54(2):445-458.
作者姓名:赵南南  邵珠山  郑晓蒙  吴奎  秦溯
作者单位:*.西安建筑科技大学土木工程学院, 西安 710055
基金项目:国家自然科学基金(11872287);;陕西省重点研发计划(2019 ZDLGY01-10)资助项目;
摘    要:深埋软岩隧道围岩表现出显著的塑性软化与剪胀特性,而当下的理论分析很少同时考虑这两点,导致预测结果与隧道实际变形行为存在一定误差.为解决该问题,本文基于Kelvin-Voigt流变模型和Mohr-Coulomb强度准则,考虑了塑性阶段时围岩软化与剪胀特征,并引入了掌子面空间约束效应,建立了深埋软岩隧道黏弹-塑性计算分析模...

关 键 词:深埋软岩隧道  黏弹-塑性模型  塑性软化  剪胀  锚杆支护
收稿时间:2021-09-15

ANALYTICAL APPROACH TO THE VISCOELASTO-PLASTIC MECHANICAL RESPONSE OF DEEP SOFT ROCK TUNNEL CONSIDRING THE ROCKBOLT REINFORCEMENT EFFECT
Institution:*.School of Civil Engineering, Xi’an University of Architecture and Technology, Xi’an 710055, China?.School of Science, Xi’an University of Architecture and Technology, Xi’an 710055, China
Abstract:The surrounding rock of deep soft rock tunnel shows significant plastic softening and dilatancy characteristics. The ignorance of the coupling influences of these two characteristics in current studies leads to the inaccurate prediction results of tunnel deformation. In order to solve the problem, a viscoelasto-plastic calculation model of deep soft rock tunnel is established, based on the Kelvin-Voigt model and Mohr-Coulomb strength criterion. In this model, the plastic softening and dilatancy of surrounding rock are considered and the restriction effect of tunnel face is introduced as well. Furthermore, a mechanical model of rockbolt-reinforced surrounding rock is established by using the equivalent stiffness method, which takes the rockbolt reinforcement into account. Considering the relationship between plastic radius of surrounding rock and bolt length, analytical solutions for tunnel responses under the six conditions are provided. In addition, the reliability and effectiveness of the theoretical derivation are well validated by comparing numerical and analytical results. Finally, the reinforcement effect of rockbolt is discussed based on the analytical solution and a comprehensive parametric investigation is carried out, including the installation time and stiffness of rockbolt and tunnel excavation rate. Results indicate that without considering the rockbolt reinforcement effect, the excavation rate only poses the influence on the development law of early deformation of tunnel, and its influence on the final tunnel displacement can be ignored. The tunnel deformation will be greatly underestimated without considering the plastic deformation of surrounding rock, resulting in a large gap between the predicted and actual results. When the excavation rate is large, the rockbolt should be installed as earlier as possible, to ensure that the rockbolt can play an effective role inmiting surrounding rock deformation. There exists a sub-linear relationship between bolt stiffness and tunnel displacement, and the increase of rockbolt stiffness can prolong the time required for surrounding rock entering plastic deformation. The results of this paper can provide useful guidance for the similar projects. 
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