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Main Author: Wout, Elwin van 't
Format: Preprint
Published: 2022
Subjects:
Online Access:https://arxiv.org/abs/2206.00708
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author Wout, Elwin van 't
author_facet Wout, Elwin van 't
contents Acoustic wave propagation through a homogeneous material embedded in an unbounded medium can be formulated as a boundary integral equation and accurately solved with the boundary element method. The computational efficiency deteriorates at high frequencies due to the increase in mesh size with a fixed number of elements per wavelength and also at high material contrasts due to the ill-conditioning of the linear system. This study presents the design of boundary element methods feasible for nonconforming surface meshes at the material interface. The nonconforming algorithm allows for independent grid generation, improves flexibility, and reduces the degrees of freedom. It works for different boundary integral formulations for Helmholtz transmission problems, operator preconditioning, and coupling with finite element solvers. The extensive numerical benchmarks at canonical configurations and an acoustic foam model confirm the significant improvements in computational efficiency when employing the nonconforming grid coupling in the boundary element method.
format Preprint
id arxiv_https___arxiv_org_abs_2206_00708
institution arXiv
publishDate 2022
record_format arxiv
spellingShingle The Boundary Element Method for Acoustic Transmission with Nonconforming Grids
Wout, Elwin van 't
Numerical Analysis
Computational Physics
Acoustic wave propagation through a homogeneous material embedded in an unbounded medium can be formulated as a boundary integral equation and accurately solved with the boundary element method. The computational efficiency deteriorates at high frequencies due to the increase in mesh size with a fixed number of elements per wavelength and also at high material contrasts due to the ill-conditioning of the linear system. This study presents the design of boundary element methods feasible for nonconforming surface meshes at the material interface. The nonconforming algorithm allows for independent grid generation, improves flexibility, and reduces the degrees of freedom. It works for different boundary integral formulations for Helmholtz transmission problems, operator preconditioning, and coupling with finite element solvers. The extensive numerical benchmarks at canonical configurations and an acoustic foam model confirm the significant improvements in computational efficiency when employing the nonconforming grid coupling in the boundary element method.
title The Boundary Element Method for Acoustic Transmission with Nonconforming Grids
topic Numerical Analysis
Computational Physics
url https://arxiv.org/abs/2206.00708