Multi-level adaptive particle refinement method with large refinement scale ratio and new free-surface detection algorithm for complex fluid-structure interaction problems
Tianrun Gao, Huihe Qiu, Lin Fu

TL;DR
This paper introduces an enhanced adaptive particle refinement method with a large scale ratio and a novel free-surface detection algorithm, significantly improving efficiency and accuracy in complex fluid-structure interaction simulations.
Contribution
The study develops a multi-level APR method with a scale ratio of 4 and a new free-surface detection algorithm based on Voronoi diagrams, advancing FSI simulation capabilities.
Findings
Reduced computational costs with scale ratio 4
Results consistent with experimental data and other studies
Significant time savings in complex FSI simulations
Abstract
Fluid-Structure Interaction (FSI) is a crucial problem in ocean engineering. The smoothed particle hydrodynamics (SPH) method has been employed recently for FSI problems in light of its Lagrangian nature and its advantage in handling multi-physics problems. The efficiency of SPH can be greatly improved with the Adaptive Particle Refinement (APR) method, which refines particles in the regions of interest while deploying coarse particles in the left areas. In this study, the APR method is further improved by developing several new algorithms. Firstly, a new particle refinement strategy with the refinement scale ratio of 4 is employed for multi-level resolutions, and this dramatically decreases the computational costs compared to the standard APR method. Secondly, the regularized transition sub-zone is deployed to render an isotropic particle distribution, which makes the solutions between…
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Taxonomy
TopicsFluid Dynamics Simulations and Interactions · Numerical methods in engineering · Ship Hydrodynamics and Maneuverability
