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May 27, 2026Journal of Marine Science and Engineering0 citationsOpen Access

Numerical Study on the Crushing Failure of Sea Ice Against a Vertical Structure Using the S-ALE Method

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YTYukui TianWuhan Ship Development & Design InstituteYZYunjing ZhaoSouth China University of TechnologyZHZhang HaidianSouth China University of Technology

Key Points

  • This research aims to model the crushing failure of sea ice against vertical structures using advanced numerical methods.
  • Controlled numerical sensitivity study using LS-DYNA framework
  • Coupled S-ALE formulation with Cohesive Element Method
  • Analysis of mesh topology, size, and indentation velocity effects on fracture morphology
  • Random triangular meshes better replicate fragmentation compared to regular meshes
  • Finer meshes reduce load oscillations and provide stable force histories
  • Higher indentation velocities lead to brittle chipping and dynamic load fluctuations

Abstract

The crushing failure of sea ice is a critical design issue for polar offshore structures and ship structures because ice-induced loads may generate pronounced local damage and dynamic responses. Accurately modelling this process remains challenging because ice crushing involves localized fragmentation, crack propagation, rubble accumulation, and repeated contact release. This paper presents a controlled numerical sensitivity study of level-ice crushing against a vertical structure using a coupled LS-DYNA framework that combines the Structured Arbitrary Lagrangian–Eulerian (S-ALE) formulation with the Cohesive Element Method (CEM). The study focuses on a benchmark-scale indentation configuration and examines how mesh topology, mesh size, and imposed indentation velocity affect the predicted fracture morphology and load-time histories. The results show that random triangular meshes better reproduce stochastic fragmentation and lateral flaking than regular triangular or quadrilateral meshes, while finer meshes reduce excessive load oscillations and provide more stable force histories. The velocity study indicates a transition from gradual crushing and fragment retention at lower velocities to more rapid brittle chipping and stronger dynamic fluctuations at higher velocities. A benchmark-level comparison with published ice-indentation simulations shows that the predicted peak line load is of the same order of magnitude as reference results. The proposed framework is therefore useful for investigating numerical sensitivities and failure-mode trends in ice-crushing simulations, although final design-load application requires further calibration and formal mesh-independence assessment.

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Cite This Study

Tian et al. (2026) studied this question.

synapsesocial.com/papers/6a168b280c924ddd1bd5a153https://doi.org/10.3390/jmse14100938
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