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首页> 外文期刊>KSCE journal of civil engineering >Experimental Analysis of Shield TBM Tunnel Lining Mechanical Behaviour in an Anisotropically-Jointed Rock Mass
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Experimental Analysis of Shield TBM Tunnel Lining Mechanical Behaviour in an Anisotropically-Jointed Rock Mass

机译:盾构TBM隧道衬砌机械行为在各向异性的岩体中的实验分析

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Jointed rock masses represent a challenging geological environment for tunnel boring machine (TBM) tunneling at great depth. Especially in the case of rock masses that have anisotropic strength and deformation characteristics, the segmental lining is susceptible to asymmetrical loading and local instabilities during tunneling. This paper presents the results of experimental tests and numerical simulations of the interaction between an anisotropic rock mass and the segmental lining of a tunnel. In the tests, we considered different lateral pressure coefficients (sigma(h)/sigma(v)), joint dip angles, and joint spacings. In the numerical simulations, different joint cohesions, friction angles, and tensile strengths were considered in order to study the effects of joint mechanical parameters on the behaviour of the liner and to evaluate quantitative trends of this effect on the liner. We studied the internal force, deformation, and fracture of the segmental lining. It was shown that, under isotropic in situ stress (sigma(h)/sigma(v), = 1), the anisotropy of the rock masses was a major control on the deformation and damage of the liner, with the maximum positive bending moment and tensile cracks on the liner developing mainly at the direction normal to the stratification. When loaded by increasingly anisotropic in situ stress states (sigma(h)/sigma(v) 1), the deformation of the liner and the characteristics of the damage were observed to become increasingly influenced by the major principal stress and, correspondingly, less controlled by the anisotropy of the rock structure. The smaller joint spacing tended to induce larger rock mass pressure on the liner, thereby resulting in greater internal force and deformation of the liner. According to the results of the numerical simulations, the internal force on the liner and its deformation increased markedly with decreasing joint friction angle and cohesion values. The response of the internal force and deformation of the liner to the change in the joint tensile strength was relatively small.
机译:关节岩体代表隧道镗床(TBM)隧道的挑战性地质环境。特别是在具有各向异性强度和变形特性的岩体的情况下,在隧道期间,节段衬里易对比加载和局部稳定性。本文介绍了各向异性岩体和隧道节段衬里之间的相互作用的实验测试和数值模拟的结果。在测试中,我们认为不同的横向压力系数(Sigma(H)/ Sigma(V)),关节倾角和联合间距。在数值模拟中,考虑了不同的关节内聚力,摩擦角和拉伸强度,以研究关节机械参数对衬里行为的影响,并评估对衬里对此作用的定量趋势。我们研究了节段衬里的内部力,变形和骨折。结果表明,在各向同性原位应激(Sigma(H)/ Sigma(V),= 1)下,岩体的各向异性是对衬里变形和损坏的主要控制,最大阳性弯矩在衬里上的拉伸裂缝主要在正常的方向上发育到分层。当由越来越各向异性的原位应激状态加载时(Sigma(H)/ Sigma(v)> 1),衬里的变形和损伤的特征被观察到受主要主压力的越来越受影响,相应地少由岩石结构的各向异性控制。较小的关节间距倾向于在衬里诱导更大的岩石质量压力,从而导致衬里的内部力和变形。根据数值模拟的结果,随着关节摩擦角度和内聚力值,衬里上的内部力及其变形显着增加。衬里内部力和变形对关节拉伸强度的变化的响应相对较小。

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