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Analytical method regarding compression-bending capacity of segmental joints: Theoretical model and verification

机译:节理节点压弯承载力分析方法:理论模型与验证

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The flexural bearing capacity of a segmental lining structure, mainly comprising the flexural bearing capacities of segments and the compression-bending capacities of joints, is an important index for evaluating the mechanical performance of a shield tunnel. As indicated by this study, the flexural bearing capacity of a segment has a theoretical basis for the calculation, whereas that of a joint does not. Combined with the deformation characteristics of a segmental joint under compression-bending loads, concrete yielding at the joint surface is taken as the criterion of the ultimate bearing state of a segmental joint, upon which a set of theories for calculating the compression-bending capacity of the segmental joint is established in terms of the mechanical model of the segmental joint. Therefore, according to an analytical solution of compression-bending capacity of a segmental joint, the accuracy and correctness of the designed algorithm are verified through a full-scale compression-bending test of a segmental joint, and the proposed method is then applied to prototype tests of the segmental lining structure for interpretation of the test results. A comparison with the results of full-scale segmental joint tests indicates that the relative errors of the joint bending moments between the test results and the theoretically calculated results are 3% and 5.6% for positive and negative bending, respectively, which not only confirms the accuracy of the proposed theoretical model but also rationalizes the assumption that the yielding of the concrete joint surface is a sign of the joint reaching its ultimate limit state. Using the proposed method, the prototype test results of the segmental rings are interpreted and indicate that the structural failure of a straight jointed assembly structure (STRS) is mainly caused by joint failure because most of the joints have already exceeded their ultimate bearing capacity, whereas none of the segments have reached their flexural bearing capacity. In the test results for a staggered-jointed assembly structure (STGS), both the segments and joints have reached the ultimate joint bearing capacity or are nearly yielding at the same time. The interaction between the segmental rings of an STGS not only allows both the bearing capacity of the segment and the joint to be fully exerted while the structure bears a load but also generates yielding of the two-part structure almost concurrently; thus, an STGS has better bearing performance than an STRS.
机译:分段衬砌结构的抗弯承载力,主要包括分段的抗弯承载力和节点的抗压弯承载力,是评价盾构隧道力学性能的重要指标。如本研究所示,节段的抗弯承载力具有计算的理论基础,而节理则没有。结合分段节理在压弯荷载作用下的变形特性,以节理面处的混凝土屈服作为分段节理的极限承载状态的判据,并据此推导了一组理论计算压弯承载力的理论。分段节根据分段节的力学模型建立。因此,根据分段节段的压缩弯曲能力的解析解,通过分段节段的全尺寸压缩弯曲试验验证了所设计算法的准确性和正确性,并将所提出的方法应用于原型。分段衬砌结构的测试,以解释测试结果。与全尺寸分段接头试验的结果进行比较表明,试验结果与理论计算结果之间的正向弯曲和负向弯曲的相对弯曲力矩的相对误差分别为3%和5.6%,这不仅证实了所提出的理论模型的精度,但也合理化了以下假设:混凝土接缝表面的屈服是接缝达到极限极限状态的标志。使用所提出的方法,对节段环的原型测试结果进行了解释,并表明直节式装配结构(STRS)的结构失效主要是由接头失效引起的,因为大多数接头已超过其极限承载力,而没有一个段达到其抗弯承载能力。在交错接头装配结构(STGS)的测试结果中,节段和接头都达到了极限接头承载力或几乎同时屈服。 STGS的节段环之间的相互作用不仅允许在结构承受载荷的同时充分发挥节段和关节的承载力,而且几乎同时产生了两部分结构的屈服。因此,STGS比STRS具有更好的轴承性能。

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