首页> 外文期刊>Journal of Pipeline Systems Engineering and Practice >Numerical Stress-Strain Analysis of Buried Steel Pipelines Crossing Active Strike-Slip Faults with an Emphasis on Fault Modeling Aspects
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Numerical Stress-Strain Analysis of Buried Steel Pipelines Crossing Active Strike-Slip Faults with an Emphasis on Fault Modeling Aspects

机译:穿越主动走滑断层的埋地钢管的应力-应变数值分析,重点在断层建模方面

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摘要

At present, advanced numerical models of pipelines crossing active faults are based on the representation of the pipeline as an ensemble of shell or solid finite elements. The surrounding soil is represented as an inelastic continuum using appropriate constitutive models and three-dimensional (3D) solid elements. The pipeline-soil interaction is modeled as a surface-to-surface contact problem. These models allow a detailed analysis of the stress-strain state with account for localized limit states to be performed. Still, concerning the lack of data from real seismic events and large-scale tests, which can be used for calibration of numerical models, the question of adequacy of the numerical results is a topical issue. In this paper, a 3D numerical model of a buried steel pipeline crossing an active tectonic fault is developed and discussed with an emphasis on the pipeline-soil interaction and mathematical representation of the fault. The influence of the fault model on the predicted stress-strain state of the pipeline is analyzed using two different types of fault representation. The first approach is based on the continuous representation of the fau in the second approach, two separate soil blocks interacting along the fault plane are introduced. The latter approach has not yet been applied to the analysis of fault-crossing problems. The numerical results are compared on the basis of displacement, strain and contact soil pressure distributions, evolution of the pipe ovalization parameter and bending moment in the critical cross section, and soil deformations in the near-fault zone.
机译:目前,穿越活动断层的管道的高级数值模型是基于将管道表示为壳或实体有限元的整体的表示。使用适当的本构模型和三维(3D)实体元素,将周围的土壤表示为非弹性连续体。管道与土壤的相互作用被建模为表面对表面的接触问题。这些模型允许对应力-应变状态进行详细分析,并考虑要执行的局部极限状态。但是,由于缺乏来自真实地震事件和大规模测试的数据(可用于数值模型的校准),因此数值结果是否足够是一个热门问题。在本文中,建立并讨论了穿越活动构造断层的地下钢管的3D数值模型,并着重讨论了管道与土壤的相互作用以及断层的数学表示。使用两种不同类型的故障表示法分析了故障模型对管道预测应力-应变状态的影响。第一种方法是基于故障的连续表示。在第二种方法中,引入了两个沿断层平面相互作用的独立的土块。后一种方法尚未应用于跨断层问题的分析。根据位移,应变和接触土压力分布,临界截面处的管椭圆化参数和弯矩的演变以及断层附近土体变形对数值结果进行了比较。

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