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A new analytical method of strain and deformation of pipeline under fault movement

机译:一种新的故障运动应变和变形的新分析方法

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摘要

A pipeline usually extends thousands of meters or more, and, in order to test the pipeline in the lab accurately, it is expected to develop a reasonable method to simplify the length of the model and simulate the small deformation section of the pipeline for a practical lab test. In this research, the scale model with consideration of the strengthening stage after the pipeline yielding is given to study the mechanical performance of the pipeline under fault displacement. Based on the mechanical model of the elastic foundation beam, a new analytical method of strain and deformation of pipeline is developed in which an equivalent spring model is established to simulate the small deformation section of the pipeline far away from the fault. The similarity ratio of the model is designed, and the results of the shell model with fixed boundary at both ends are compared by using ABAQUS software. On this basis, the soil-box test model with equivalent spring boundary is made. The elastic coefficients of springs at both ends are determined by N-Delta L curve (N and Delta L represents the interaction force and the relative displacement of pipeline-soil, respectively), and the influences of pipeline diameter, buried depth, soil and spring with different elastic coefficients on the mechanical properties of pipelines are analyzed. The results show that the two-end spring device can better control the size of the test model and enhance the reliability of the test results. The strain and deformation responses of the pipeline can be reduced by choosing larger pipeline diameter, smaller buried depth, non-cohesive backfill soil and spring with smaller elastic coefficient.
机译:管道通常延伸数千米或更长时间,并且为了准确地测试实验室中的管道,预计将开发一种合理的方法来简化模型的长度,并模拟管道的小变形部分以实现实用的管道试验。在本研究中,尺度模型考虑了在管道屈服后的加强阶段进行了研究,以研究了在故障位移下管道的机械性能。基于弹性基础梁的机械模型,开发了一种新的分析方法,以及管道的变形,其中建立了等效的弹簧模型来模拟远离故障的管道的小变形部分。通过使用ABAQUS软件比较模型的相似性比率,以及两端在两端的固定边界的壳模型的结果。在此基础上,制造了具有等效弹簧边界的土箱测试模型。两端弹簧的弹性系数由N-ΔL曲线(n和δ1表示相互作用力和管道 - 土壤的相对位移),以及管道直径,埋地深度,土壤和弹簧的影响分析了不同的弹性系数,分析了管道的机械性能。结果表明,两端弹簧装置可以更好地控制测试模型的尺寸并提高测试结果的可靠性。通过选择较大的管道​​直径,较小的埋藏深度,非粘性回填土壤和弹簧,可以减少管道的应变和变形响应,具有较小的弹性系数。

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