English

Accurate computation of surface stresses and forces with immersed boundary methods

Fluid Dynamics 2016-07-20 v1 Computational Physics

Abstract

Many immersed boundary methods solve for surface stresses that impose the velocity boundary conditions on an immersed body. These surface stresses may contain spurious oscillations that make them ill-suited for representing the physical surface stresses on the body. Moreover, these inaccurate stresses often lead to unphysical oscillations in the history of integrated surface forces such as the coefficient of lift. While the errors in the surface stresses and forces do not necessarily affect the convergence of the velocity field, it is desirable, especially in fluid-structure interaction problems, to obtain smooth and convergent stress distributions on the surface. To this end, we show that the equation for the surface stresses is an integral equation of the first kind whose ill-posedness is the source of spurious oscillations in the stresses. We also demonstrate that for sufficiently smooth delta functions, the oscillations may be filtered out to obtain physically accurate surface stresses. The filtering is applied as a post-processing procedure, so that the convergence of the velocity field is unaffected. We demonstrate the efficacy of the method by computing stresses and forces that converge to the physical stresses and forces for several test problems.

Keywords

Cite

@article{arxiv.1603.02306,
  title  = {Accurate computation of surface stresses and forces with immersed boundary methods},
  author = {Andres Goza and Sebastian Liska and Benjamin Morley and Tim Colonius},
  journal= {arXiv preprint arXiv:1603.02306},
  year   = {2016}
}
R2 v1 2026-06-22T13:05:48.703Z