Evaluation of design parameters for geosynthetic reinforced-soil integrated bridge system based on finite element analysis

  • Mahrukh Khan
  • , Muhammad Umar
  • , Mehtab Alam*
  • , Umair Ali
  • , Nikolai Ivanovich Vatin
  • , Hamad Almujibah
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

This study evaluates the performance of a geosynthetic reinforced soil integrated bridge system (GRS-IBS) in terms of total displacement by varying different design parameters simultaneously and also suggests optimum values of them. These parameters include, i. backfill internal friction angle ((Formula presented.)) and reinforcement spacing (Sv), ii. Backfill internal friction angle ((Formula presented.)) and geogrid axial stiffness (EA) at varying reinforcement spacing (Sv), iii. Backfill internal friction angle ((Formula presented.)) and number of bearing bed layers, and the effect of retained backfill slope (mb). Simulations were conducted using PLAXIS 2D software. Analysis showed that the cumulative effect of these parameters had a significant effect on total displacement but after a certain point increase or decrease in their values showed no effect on the results while some parameters showed negligible effect on the deformation of the wall. Furthermore, due to the notable effect of (Formula presented.), Sv and EA on the total displacement of the wall, the impact of these parameters was also investigated on the development of tensile force in the topmost layer of geogrid in GRS IBS. It was noted that the shape of the tensile force distribution graph was the same for all the cases and the order of the parameters in terms of their effect on tensile force was Sv > (Formula presented.) > EA. Also, a detailed analysis of tensile force development in all the layers of geogrids showed that if (Formula presented.) ≤ 0.2 m, the spacing between reinforcement in the lower portion of GRS IBS can be increased as these layers showed approximately zero tensile load.

Original languageEnglish
Article number1454201
JournalFrontiers in Materials
Volume11
DOIs
StatePublished - 2024

Bibliographical note

Publisher Copyright:
Copyright © 2024 Khan, Umar, Alam, Ali, Vatin and Almujibah.

Keywords

  • finite element analysis
  • geosynthetic reinforced soil integrated bridge system GRS-IBS
  • optimum parameters
  • parametric study
  • tensile forces

ASJC Scopus subject areas

  • Materials Science (miscellaneous)

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