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contributor authorHailey-Rae Rose
contributor authorBrad P. Wham
contributor authorGersena Banushi
date accessioned2025-04-20T10:04:29Z
date available2025-04-20T10:04:29Z
date copyright12/10/2024 12:00:00 AM
date issued2025
identifier otherJPSEA2.PSENG-1627.pdf
identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4303936
description abstractCase studies of pipeline repairs following extreme ground movement events demonstrate how the displacement accommodating mechanisms of hybrid-segmented pipelines perform favorably (requiring less repairs to maintain serviceability) compared with traditional pipeline systems. Hybrid-segmented pipelines utilize a joint-locking mechanism that allows a pipe segment to move a prescribed displacement before engaging the next segment of pipe. Given the recent emergence of these technologies, there is a need to understand how these systems respond to relative movement between the pipeline system and soil because this interaction directly impacts the soil resistance accumulated along the joint and at the connections. Frictional resistance along a pipe barrel and the passive resistance developed at the face of an enlarged connection can be quantified for a single pipe segment; however, the development of these forces along a pipeline system, composed of multiple segments, is dependent on how the pipeline accommodates induced displacements. This study establishes an analytical framework that captures the displacement accommodation mechanisms of hybrid-segmented pipelines under axial ground movement and estimates the subsequent accumulations of resistance (frictional and passive) along the system. The proposed framework determines how a series of pipe segments engage and the subsequent total resistance developed based on inputs for pipe, connection, and soil properties. The proposed framework is validated with established numerical models and previous analytical approaches, demonstrating favorable comparisons. Although previous analytical models can estimate the total geotechnical demands on a pipeline system for various levels of ground movement, the proposed analytical framework is able to capture the allowable displacement and joint-locking mechanisms that uniquely differentiate hybrid-segmented systems from traditional pipelines. The analytical framework presented in this study can be used by designed engineers to make informed decisions on which pipeline systems are best suited for various conditions and ground movement scenarios.
publisherAmerican Society of Civil Engineers
titleSoil–Pipeline Interaction of Hybrid-Segmented Systems under Axial Ground Movement
typeJournal Article
journal volume16
journal issue1
journal titleJournal of Pipeline Systems Engineering and Practice
identifier doi10.1061/JPSEA2.PSENG-1627
journal fristpage04024069-1
journal lastpage04024069-13
page13
treeJournal of Pipeline Systems Engineering and Practice:;2025:;Volume ( 016 ):;issue: 001
contenttypeFulltext


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