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  4. On the efficiency of explicit and semi-explicit immersed boundary finite element methods for wave propagation problems
 
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On the efficiency of explicit and semi-explicit immersed boundary finite element methods for wave propagation problems

Publikationstyp
Journal Article
Date Issued
2025-03-01
Sprache
English
Author(s)
Bürchner, Tim  
Radtke, Lars  
Konstruktion und Festigkeit von Schiffen M-10  
Kopp, Philipp  
Kollmannsberger, Stefan  
Rank, Ernst  
Düster, Alexander  
Konstruktion und Festigkeit von Schiffen M-10  
TORE-URI
https://hdl.handle.net/11420/58303
Journal
Advances in computational science and engineering  
Volume
3
Start Page
125
End Page
149
Citation
Advances in Computational Science and Engineering 3: 125-149 (2025)
Publisher DOI
10.3934/acse.2025007
Scopus ID
2-s2.0-105019051690
Publisher
American Institute of Mathematical Sciences
Immersed boundary methods have attracted substantial interest in the last decades due to their potential for computations involving complex geometries. Often these cannot be efficiently discretized using boundary-fitted finite elements. Immersed boundary methods provide a simple and fully automatic discretization based on Cartesian grids and tailored quadrature schemes that account for the geometric model. It can thus be described independently of the grid, e.g., by image data obtained from computed tomography scans. The drawback of such a discretization lies in the potentially small overlap between certain elements in the grid and the geometry. These badly cut elements with small physical support pose a particular challenge for nonlinear and/or dynamic simulations. In this work, we focus on problems in structural dynamics and acoustics and concentrate on solving them with explicit time-marching schemes. In this context, badly cut elements can lead to unfeasibly small critical time step sizes. We investigate the performance of implicit-explicit time marching schemes and two stabilization methods developed in previous works as potential remedies. While these have been studied before with regard to their effectiveness in in-creasing the critical time step size, their numerical efficiency has only been considered in terms of accuracy per degree of freedom. In this paper, we eval-uate the computation time required for a given accuracy, which depends not only on the number of degrees of freedom but also on the selected spatial dis-cretization, the sparsity patterns of the system matrices, and the employed time-marching scheme.
Subjects
explicit dynamics
finite cell method
isogeometric analysis
spectral element method
Wave equation
DDC Class
600: Technology
Funding(s)
Erweiterung fiktiver Gebietsmethoden für vibroakustische Fragestellungen - Analyse heterogener Dämmmaterialien  
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