2020
DOI: 10.1121/10.0000648
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Perfectly matched layer absorbing boundary conditions for Euler equations with oblique mean flows modeled with smoothed particle hydrodynamics

Abstract: Absorbing boundary conditions (ABCs) play a critical role in the simulation of sound or wave propagation problems. This paper proposes a technique of space–time transformed perfectly matched layer (PML) boundary condition implemented in a widely used mesh-free method called smoothed particle hydrodynamic (SPH) method, to absorb the outgoing sound waves with oblique shear mean flow. Special consideration is given to the particle features of the SPH, and the PMLs are formulated to correct the truncation error of… Show more

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“…Studies on theoretical issues related to SPH have also been continuously carried out, including studies on the effects of model parameters [54], and techniques handling non-reflection boundaries [55,56], modeling of surface tension [57], and formulation of GSPH for energetic materials, where the Riemann solver is integrated into the traditional SPH algorithm to eliminate artificial viscosity [58]. However, the SPH method also has some defects when resolving the fluid problem.…”
Section: Technical Methods For Fluidmentioning
confidence: 99%
“…Studies on theoretical issues related to SPH have also been continuously carried out, including studies on the effects of model parameters [54], and techniques handling non-reflection boundaries [55,56], modeling of surface tension [57], and formulation of GSPH for energetic materials, where the Riemann solver is integrated into the traditional SPH algorithm to eliminate artificial viscosity [58]. However, the SPH method also has some defects when resolving the fluid problem.…”
Section: Technical Methods For Fluidmentioning
confidence: 99%