English

Gaussian-Like Immersed Boundary Kernels with Three Continuous Derivatives and Improved Translational Invariance

Numerical Analysis 2020-10-01 v4 Numerical Analysis Fluid Dynamics

Abstract

The immersed boundary (IB) method is a general mathematical framework for studying problems involving fluid-structure interactions in which an elastic structure is immersed in a viscous incompressible fluid. In the IB formulation, the fluid described by Eulerian variables is coupled with the immersed structure described by Lagrangian variables via the use of the Dirac delta function. From a numerical standpoint, the Lagrangian force spreading and the Eulerian velocity interpolation are carried out by a regularized, compactly supported discrete delta function, which is assumed to be a tensor product of a single-variable immersed-boundary kernel. IB kernels are derived from a set of postulates designed to achieve approximate grid translational invariance, interpolation accuracy and computational efficiency. In this note, we present new 5-point and 6-point immersed-boundary kernels that are C3\mathscr{C}^3 and yield a substantially improved translational invariance compared to other common IB kernels.

Keywords

Cite

@article{arxiv.1505.07529,
  title  = {Gaussian-Like Immersed Boundary Kernels with Three Continuous Derivatives and Improved Translational Invariance},
  author = {Yuanxun Bao and Alexander D. Kaiser and Jason Kaye and Charles S. Peskin},
  journal= {arXiv preprint arXiv:1505.07529},
  year   = {2020}
}

Comments

10 pages, 4 figures. This is an updated manuscript to the published version with a new 5-point kernel