An arbitrary-order immersed interface method for the two-dimensional propagation of acoustic and elastic waves

Author:

Sabatini Roberto1ORCID,Monti Alessandro2ORCID,Pailhas Yan2ORCID,Xenaki Angeliki2ORCID,Cristini Paul3ORCID

Affiliation:

1. Department of Physical Sciences and Center for Space and Atmospheric Research, Embry-Riddle Aeronautical University 1 , Daytona Beach, Florida, USA

2. NATO STO Centre for Maritime Research and Experimentation 2 , La Spezia, Italy

3. Aix-Marseille University, CNRS, Centrale Marseille, LMA 3 , Marseille, France

Abstract

This paper proposes an arbitrary-order immersed interface method for simulating the two-dimensional propagation of acoustic and elastic waves through fluid/solid interfaces. The present technique involves two main ingredients: (1) the linearized equations of continuum mechanics are simulated through an ADER (Arbitrary high-order schemes using DERivatives) scheme of arbitrary-order in both space and time [Schwartzkopff et al., J. Comput. Phys. 197(2), 532–539 (2004)]; (2) the jump conditions along the material interfaces are taken into account through the “explicit simplified interface method” (ESIM) derived by Lombard and Piraux [J. Comput. Phys. 195(1), 90–116, 2004]. To implement the ESIM, arbitrary-order spatial derivatives of the interface conditions must be calculated. To this end, an algorithm not requiring their explicit analytical expressions is developed for their numerical computation. Two numerical experiments involving flat and curved interfaces are finally discussed. When increasing the order of both the ADER scheme and of the interface treatment, the improvement of the convergence and of the accuracy of the numerical method is more specifically demonstrated by comparing the numerical results with analytical solutions.

Funder

North Atlantic Treaty Organization - Allied Command Transformation

Publisher

AIP Publishing

Subject

Condensed Matter Physics,Fluid Flow and Transfer Processes,Mechanics of Materials,Computational Mechanics,Mechanical Engineering

Reference53 articles.

1. Equations of motion in dissipative fluid,2010

2. The wave theory of sound,2019

3. Wave propagation near a fluid-solid interface: A spectral-element approach;Geophysics,2000

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