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March 5, 2026Physics of Fluids0 citations

Experimental and theoretical studies of after flow load effects on the hull girder damage in underwater explosion

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YQYan‐Jie QiHWHan-cheng WangJJJunjie Jiao

Key Points

  • This research investigates how after flow from underwater explosions affects hull girder damage.
  • Conducted damage experiments on hull girder at various detonation distances
  • Established a dynamic model to analyze hull girder deformation due to after flow
  • Performed numerical simulations to compare against experimental results
  • Numerical simulations closely matched experimental results, showing nonlinear deformation increases with proximity to explosion
  • At R/R0 = 6, after flow notably increased maximum deformation by 79.3% compared to scenarios excluding it
  • After flow from bubble expansion alone contributed to an additional 87.1% increase in final deformation.

Abstract

The after flow induced by underwater explosion (UNDEX) plays an important role on the damage of ship structures, particularly in the near-field explosion. In this paper, the damage experiments of the hull girder were conducted at detonation distances of R/R0 = 6, 10, and 17, and a dynamic model was established to study the hull girder deformation considering the after flow. It shows that the numerical simulations have a good agreement with the experimental results of the hull girder deformation, which increases nonlinearly as the distance decreases due to the contribution of the after flow to the nonlinear growth of structural damage. It further demonstrates that the after flow has the most pronounced influence on the overall deformation at the closest distance (R/R0 = 6), with the after flow caused by bubble expansion playing a dominant role. Critically, due to the most contribution of the after flow to the total wall pressure and its continuous energy input, the after flow increases the maximum deformation by 79.3% compared with the numerical results that exclude it at this distance. Notably, the after flow caused by bubble expansion alone accounts for an additional 87.1% final deformation increment. This research provides significant insights into the structural damage mechanism caused by near-field UNDEX loads.

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Cite This Study

Qi et al. (2026) studied this question.

synapsesocial.com/papers/69a91d8dd6127c7a504c06afhttps://doi.org/10.1063/5.0316977
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