Journal of Marine Science and Engineering (Aug 2024)

Wave–Induced Soil Dynamics and Shear Failure Potential around a Sandbar

  • Ning Chen,
  • Linlong Tong,
  • Jisheng Zhang,
  • Yakun Guo,
  • Bo Liu,
  • Zhipeng Zhou

DOI
https://doi.org/10.3390/jmse12081418
Journal volume & issue
Vol. 12, no. 8
p. 1418

Abstract

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Sandbars are commonly encountered in coastal environments, acting as natural protections during storm events. However, the sandbar response to waves and possible shear failure is poorly understood. In this research, a two–dimensional numerical model is settled to simulate the wave-induced sandbar soil dynamics and instability mechanism. The model, which is based upon the Reynolds-averaged Navier–Stokes (RANS) equations and Biot’s consolidation theory, is validated using available experiments. Parametric studies are then conducted to appraise the impact of the wave parameters and soil properties on soil dynamics. Results indicate that the vertical distribution of the maximum vertical effective stress in the sandbar is different from that in the flat seabed, which decreases rapidly along the soil depth and then increases gradually. The impact of soil permeability and saturation on the vertical effective stress distribution around the sandbar also differ from that in the flat seabed. Unlike the flat seabed, the vertical distribution of shear stress in the sandbar increases with an increasing wave period. The sandbar soil shear failure potential is discussed based upon the Mohr–Coulomb criterion. Results show that the range of shear failure around the sandbar is wider and the depth is deeper when the wave trough arrives.

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