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New Method of Modeling the Behavior of Buried Steel Distribution Pipes Subjected to Reverse Faulting

机译:反向故障下埋地钢管分布行为建模的新方法

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This paper proposes a new method for modeling the behavior of buried steel pipes under reverse faulting. The maximum soil-pipe interaction forces are determined using the results of detailed finite-element analyses that are validated through full-scale laboratory testing of 114.3 and 168.3-mm-diameter steel pipes buried in two different soil types under a reverse fault offset of 0.6 m. The detailed finite-element model is validated through pipe deformation, strain distribution, peak strains, and cross-section distortion. Furthermore, the load-displacement (q-z) curves for the vertical soil springs along with the dimensionless uplift factors are determined and a new formula is proposed. The pipe-soil interaction forces are validated and compared with previous studies and values suggested by different guidelines. The q-z relations for the uplift forces are found to be more flexible for sections close to the fault plane than are the sections away from the fault plane. Using the proposed model, a validated simple finite-element modeling technique is introduced to simulate the behavior of buried steel pipes under reverse faulting with required accuracy for engineering purposes. (C) 2017 American Society of Civil Engineers.
机译:本文提出了一种新的建模方法,用于对地下钢管在反向断层作用下的行为进行建模。最大土管相互作用力是通过详细的有限元分析结果确定的,该分析结果通过对埋入两种不同土壤中的直径为114.3和168.3毫米的钢管进行了全面的实验室测试而得到了验证,反向断偏偏移为0.6米详细的有限元模型通过管道变形,应变分布,峰值应变和横截面变形进行了验证。此外,确定了垂直土弹簧的荷载-位移(q-z)曲线以及无因次升力因子,并提出了新的公式。验证了管道与土壤的相互作用力,并将其与以前的研究和不同指南所建议的值进行了比较。发现靠近断层平面的断面的上升力的q-z关系比远离断层平面的断面的q-z关系更灵活。使用所提出的模型,引入了经过验证的简单有限元建模技术,以工程目的要求的精度来模拟埋入钢管在反向断裂下的行为。 (C)2017年美国土木工程师学会。

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