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Analysis of buried steel pipelines at watercourse crossings under liquefaction-induced lateral spreading

机译:液化引起侧向扩展的河道交叉口埋地钢管分析

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At watercourse crossings, buried steel pipelines typically transition from a shallow burial depth to a depth below the maximum scour depth of the watercourse channel. This paper investigates the pipeline response when such watercourse crossings undergo liquefaction-induced lateral spreading. The investigation is performed via non-linear finite element analyses (FEA) for a multitude of "generic" combinations of watercourse depth, liquefiable soil stratigraphy and pipe characteristics. The FEA provide peak pipeline strains and are used to define allowable peak permanent ground displacement (PGD) values for each "generic" case. It is shown that pipe strain is most intense at pipe overbends and that the allowable peak PGD increases with the depth of the watercourse, as there is less interaction between the strained overbend and the sagbend areas. Furthermore, allowable peak PGD increases slightly with pipe diameter and significantly with pipe wall thickness, while it reduces with soil friction and the inclination angle of the downward pipeline transition below the waterbed.
机译:在水道交叉口,埋入的钢管通常从浅埋深度过渡到低于水道最大冲刷深度的深度。本文研究了这样的水道穿越液化引起的横向扩展时的管道响应。该研究是通过非线性有限元分析(FEA)对河道深度,可液化地层和管道特性的“一般”组合进行的。 FEA提供峰值管道应变,并用于为每种“一般”情况定义允许的峰值永久地面位移(PGD)值。结果表明,在管道超弯处,管道应变最为强烈,并且允许峰值PGD随水道深度的增加而增加,因为在应变超弯与下垂区域之间的相互作用较小。此外,允许峰值PGD随管径略有增加,并随管壁厚度显着增加,而随着土壤摩擦和水床下方的向下管道过渡的倾斜角度而减小。

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