English

Boundary-velocity error and stability of the accelerated multi-direct-forcing immersed boundary method

Fluid Dynamics 2026-02-17 v3 Numerical Analysis Numerical Analysis Computational Physics

Abstract

The multi-direct-forcing immersed boundary method allows for a small velocity error of the no-slip condition in moving-particle problems but suffers from numerical instability if simulation parameters are not carefully chosen. This study investigates the boundary-velocity error and numerical stability of the accelerated multi-direct-forcing immersed boundary method. An analysis of the discretized equations of body motion in moving boundary problems identifies a critical parameter that solely determines the numerical stability for the body motion. Additionally, numerical simulations reveal the optimal acceleration parameter that minimizes the velocity error of the no-slip condition and is independent of details of the boundary discretisation, the boundary shape, and spatial dimensionality. This study provides a guideline for establishing numerically stable simulations of moving boundary problems at optimal boundary-velocity error.

Keywords

Cite

@article{arxiv.2507.04986,
  title  = {Boundary-velocity error and stability of the accelerated multi-direct-forcing immersed boundary method},
  author = {Kosuke Suzuki and Emmanouil Falagkaris and Timm Krüger and Takaji Inamuro},
  journal= {arXiv preprint arXiv:2507.04986},
  year   = {2026}
}
R2 v1 2026-07-01T03:49:28.356Z