RMIT University
Browse

3D FE analyses of buried pipeline with elbows subjected to lateral loading

journal contribution
posted on 2024-11-01, 16:59 authored by T Cheong, Kenichi Soga, Dilan RobertDilan Robert
This study investigates the interaction between soil and pipeline in sand subjected to lateral ground displacements with emphasis on the peak force exerted to a bended elbow-pipe. A series of three-dimensional (3D) finite-element (FE) analyses were performed in both opening and closing modes of the elbow section for different initial pipe bending angles. To model the mechanical behavior of sands, two soil models were adopted: Mohr-Coulomb and Nor-Sand soil model. Investigations also included the effects of pipe embedment depth and soil density. Results show that the opening mode exhibits higher ultimate forces and greater localized deformations than the closing mode. Nondimensional charts that account for pipeline location, bending angle, and soil density are developed. Soil-spring pipeline analyses of an elbow-pipe were performed using modified F δ soil-spring models based on the 3D FE results and were compared to the findings of conventional spring model analyses using the standard two-dimensional soil-spring model. Results show that the pipe strain does not change in the closing mode case. However, in the opening mode case, the pipe strain computed by the modified analysis is larger than that by the conventional analysis and the difference is more pronounced when the pipe stiffness is stiffer.

History

Journal

Journal of Geotechnical and Geoenvironmental Engineering

Volume

137

Issue

10

Start page

939

End page

948

Total pages

10

Publisher

American Society of Civil Engineers

Place published

United States

Language

English

Copyright

© 2011 American Society of Civil Engineers.

Former Identifier

2006047749

Esploro creation date

2020-06-22

Fedora creation date

2015-01-19

Usage metrics

    Scholarly Works

    Exports

    RefWorks
    BibTeX
    Ref. manager
    Endnote
    DataCite
    NLM
    DC