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March 5, 2026Applied Sciences0 citationsOpen Access

Centrifuge Modeling of Failure Behaviors and Mechanical Response of Bridge Piers on High Expansive Soil Slopes

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SZShubo ZhangXLX Q LiuWGWei Gao

Key Points

  • The research aims to understand the failure behaviors and mechanical responses of bridge piers on expansive soil slopes under different loading conditions.
  • Conducted 100 g geotechnical centrifuge model tests
  • Investigated slope failure modes under rainfall and bridge load coupling
  • Analyzed bridge pier deformation and earth pressure
  • Performed numerical simulations of landslides
  • Rainfall-induced failure leads to shallow slope sliding without significant pier displacement
  • Under bridge loads, mid-deep landslides occur with depths of 13–20 m, causing instability
  • Critical earth pressure at pile cap measured at 132 kPa affects bridge stability
  • Shallow landslides exhibit superficial slip–shear failure; deep-seated landslides show progressive slip tensile cracking

Abstract

To address the stability issues of bridge piers on high expansive soil slopes in the Yangtze-Huaihe River Water Transfer Project and reveal the slope-bridge structure interaction mechanism, this study performed 100 g geotechnical centrifuge model tests. Slope failure modes under rainfall-bridge load coupling are investigated, with bridge pier deformation, earth pressure, and pile bending moment evolution analyzed. Results show that rainfall-induced failure causes shallow slope sliding with negligible pier displacement, keeping the structure safe. Conversely, under bridge working and ultimate loads, the slope will experience a mid-deep landslide with a sliding depth of 13–20 m, leading to slope instability and bridge overturning. The influence range of shallow landslides is 1–2 m, and the earth pressure at the pile cap is 132 kPa, which is a critical factor affecting bridge stability. In contrast, the bearing performance of pile foundations plays a dominant controlling role in deep-seated landslides. With the increase in landslide depth, the inflection point of the pile gradually moves downward. Numerical simulations further indicate that shallow landslides feature superficial slip–shear failure, and deep-seated landslides follow a progressive slip tensile cracking mechanism.

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Cite This Study

Zhang et al. (2026) studied this question.

synapsesocial.com/papers/69a91dc3d6127c7a504c0e19https://doi.org/10.3390/app16052442
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