Three-dimensional SPH modeling of brittle fracture under hydrodynamic loading

Fuente: arXiv
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Main Authors: Singh, Vishabjeet, Peng, Chong, Islam, Md Rushdie Ibne
Format: Preprint
Published: 2025
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author Singh, Vishabjeet
Peng, Chong
Islam, Md Rushdie Ibne
author_facet Singh, Vishabjeet
Peng, Chong
Islam, Md Rushdie Ibne
contents A three-dimensional SPH computational framework is presented for modeling fluid-structure interactions with structural deformation and failure. We combine weakly compressible SPH with a pseudo-spring-based SPH solver to capture the fluid flow and deformable structures. A unified modeling approach captures the solid boundaries and fluid-structure interfaces without penalty-based contact force. The $δ$-SPH technique improves the pressure calculations in the fluid phase, while structural damage is modeled using a pseudo-spring approach, with particle interactions limited to its neighbors. The present framework can capture the three-dimensional crack surfaces in structures without any computationally intensive crack-tracking algorithm or visibility criteria. The framework has been proven effective against existing models and experimental data, demonstrating high accuracy and robustness in simulating detailed fracture patterns and offering insights into the impact of hydrodynamic events on structural integrity.
format Preprint
id arxiv_https___arxiv_org_abs_2507_10553
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Three-dimensional SPH modeling of brittle fracture under hydrodynamic loading
Singh, Vishabjeet
Peng, Chong
Islam, Md Rushdie Ibne
Computational Engineering, Finance, and Science
A three-dimensional SPH computational framework is presented for modeling fluid-structure interactions with structural deformation and failure. We combine weakly compressible SPH with a pseudo-spring-based SPH solver to capture the fluid flow and deformable structures. A unified modeling approach captures the solid boundaries and fluid-structure interfaces without penalty-based contact force. The $δ$-SPH technique improves the pressure calculations in the fluid phase, while structural damage is modeled using a pseudo-spring approach, with particle interactions limited to its neighbors. The present framework can capture the three-dimensional crack surfaces in structures without any computationally intensive crack-tracking algorithm or visibility criteria. The framework has been proven effective against existing models and experimental data, demonstrating high accuracy and robustness in simulating detailed fracture patterns and offering insights into the impact of hydrodynamic events on structural integrity.
title Three-dimensional SPH modeling of brittle fracture under hydrodynamic loading
topic Computational Engineering, Finance, and Science
url https://arxiv.org/abs/2507.10553