Stable least-squares space-time boundary element methods for the wave equation
Abstract
In this paper, we recast the variational formulation corresponding to the single layer boundary integral operator for the wave equation as a minimization problem in , where is the lateral boundary of the space-time domain . For discretization, the minimization problem is restated as a mixed saddle point formulation. Unique solvability is established by combining conforming nested boundary element spaces for the mixed formulation such that the related bilinear form is discrete inf-sup stable. We analyze under which conditions the discrete inf-sup stability is satisfied, and, moreover, we show that the mixed formulation provides a simple error indicator, which can be used for adaptivity. We present several numerical experiments showing the applicability of the method to different time-domain boundary integral formulations used in the literature.
Cite
@article{arxiv.2312.12547,
title = {Stable least-squares space-time boundary element methods for the wave equation},
author = {Daniel Hoonhout and Richard Löscher and Olaf Steinbach and Carolina Urzúa-Torres},
journal= {arXiv preprint arXiv:2312.12547},
year = {2023}
}