Thrust Restraint of Buried Continuous Pressure Pipe Considering Pipe-Soil Interaction

被引:5
|
作者
Liu, Meng [1 ]
Ortega, Rafael [1 ]
机构
[1] Aurora Tech Serv LLC, 2121 Sage Rd, Aurora, CO 77056 USA
关键词
Pressure pipe; Pipe-soil interaction (PSI); Thrust restraint; Thrust block; Restrained joint; UNIFIED APPROACH; DESIGN;
D O I
10.1061/(ASCE)PS.1949-1204.0000577
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Design and analysis of thrust restraint for a buried continuous pressure pipe is essentially a pipe-soil interaction (PSI) problem regardless of pipe materials and restraint methods. In practice, thrust block and restrained joints are the most commonly used restraint methods, and dual restraint systems using both methods can be found in many pipeline projects even though they are treated independently. However, no analytical procedure is available to analyze the performance of such dual restraint systems. Therefore, a closed-form linear-elastic solution considering PSI is proposed to analyze pipes restrained with both thrust blocks and restrained joints or continuous pipes restrained with thrust blocks. The solution also considers the contribution of friction resistance due to increased normal pressure at the pipe-soil interface, as the pipe moves laterally into and longitudinally through soils simultaneously. The solution can be easily implemented by hand-calculation or a spreadsheet for various pipe material, geometry, and soil stiffness. The example provided demonstrates that the current guideline procedure overestimates the restraint length and underestimates the axial force slightly because the frictional resistance from lateral pipe movement is neglected. A comprehensive parametric study has been conducted to illustrate the effects of different design parameters on the internal forces, displacements, and restraint length of pipes. It is found that soil stiffness is the most critical parameter in resisting thrust force.
引用
收藏
页数:12
相关论文
共 50 条
  • [21] Pipe-soil shear interaction stiffness in horizontal directional drilling and pipe bursting
    Chehab, Abdul Ghafar
    Moore, Ian
    GEOMECHANICS AND GEOENGINEERING-AN INTERNATIONAL JOURNAL, 2010, 5 (02): : 69 - 77
  • [22] Simulation of overburden pressure during laboratory investigations of axial pipe-soil interaction
    Sheil, Brian
    Martin, Chris
    Byrne, Byron
    GEOTECHNIQUE, 2021, 71 (03): : 272 - 278
  • [23] Perturbation analysis for upheaval buckling of imperfect buried pipelines based on nonlinear pipe-soil interaction
    Wang, Yingying
    Zhang, Xinhu
    Zhao, Yu
    Chen, Haoran
    Duan, Menglan
    Estefen, Segen F.
    OCEAN ENGINEERING, 2017, 132 : 92 - 100
  • [24] Numerical investigation of vertical pipe-soil interaction in clays
    Gao, Pan
    Duan, Menglan
    Electronic Journal of Geotechnical Engineering, 2014, 19 (0V): : 6337 - 6355
  • [25] Advancing pipe-soil interaction models in calcareous sand
    Tian, Yinghui
    Cassidy, Mark J.
    Gaudin, Christophe
    APPLIED OCEAN RESEARCH, 2010, 32 (03) : 284 - 297
  • [26] Consolidation effects on pipe-soil interaction due to tunneling
    Liang, Xu
    Xu, Jian
    Huang, Yong
    Shi, Li
    Zeng, Zhiquan
    Miao, Baozhu
    Huang, Lei
    Wu, Jian
    FRONTIERS IN EARTH SCIENCE, 2024, 12
  • [27] DEM simulations of transverse pipe-soil interaction on sand
    Macaro, Giulia
    Utili, Stefano
    Martin, Christopher M.
    GEOTECHNIQUE, 2021, 71 (03): : 189 - 204
  • [28] Pipe-soil interaction analysis of jointed water mains
    Rajani, B
    Zhan, C
    Kuraoka, S
    CANADIAN GEOTECHNICAL JOURNAL, 1996, 33 (03) : 393 - 404
  • [29] Nonlinear FEM strategies for modeling pipe-soil interaction
    Kunert, H. G.
    Otegui, J. L.
    Marquez, A.
    ENGINEERING FAILURE ANALYSIS, 2012, 24 : 46 - 56
  • [30] A Practical Approach to Numerical Modeling of Pipe-Soil Interaction
    Tian, Yinghui
    Cassidy, Mark J.
    PROCEEDINGS OF THE EIGHTEENTH (2008) INTERNATIONAL OFFSHORE AND POLAR ENGINEERING CONFERENCE, VOL 2, 2008, : 533 - 538