Boundary conditions for SPH through energy conservation

Fuente: arXiv
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Autori principali: Cercos-Pita, Jose Luis, Duque, Daniel, Merino-Alonso, Pablo Eleazar, Calderon-Sanchez, Javier
Natura: Preprint
Pubblicazione: 2024
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author Cercos-Pita, Jose Luis
Duque, Daniel
Merino-Alonso, Pablo Eleazar
Calderon-Sanchez, Javier
author_facet Cercos-Pita, Jose Luis
Duque, Daniel
Merino-Alonso, Pablo Eleazar
Calderon-Sanchez, Javier
contents Dealing with boundary conditions in Smoothed Particle Hydrodynamics (SPH) poses significant difficulties, indeed being one of the SPHERIC Grand Challenges. In particular, wall boundary conditions have been pivotal in SPH model development since it evolved from astrophysics to more generic fluid dynamics simulations. Despite considerable attention from researchers and numerous publications dedicated to formulating and assessing wall boundary conditions, few of them have addressed the crucial aspect of energy conservation. This work introduces a novel boundary condition designed with energy conservation as a primary consideration, effectively extending the unconditional stability of SPH to problems involving wall boundary conditions. The result is formulated within the framework of the Boundary Integrals technique. The proposal is tested on a number of cases: normal impact against a wall, adiabatic oscillations of a piston, dam break, and the water landing of a spacecraft.
format Preprint
id arxiv_https___arxiv_org_abs_2410_08573
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Boundary conditions for SPH through energy conservation
Cercos-Pita, Jose Luis
Duque, Daniel
Merino-Alonso, Pablo Eleazar
Calderon-Sanchez, Javier
Fluid Dynamics
Dealing with boundary conditions in Smoothed Particle Hydrodynamics (SPH) poses significant difficulties, indeed being one of the SPHERIC Grand Challenges. In particular, wall boundary conditions have been pivotal in SPH model development since it evolved from astrophysics to more generic fluid dynamics simulations. Despite considerable attention from researchers and numerous publications dedicated to formulating and assessing wall boundary conditions, few of them have addressed the crucial aspect of energy conservation. This work introduces a novel boundary condition designed with energy conservation as a primary consideration, effectively extending the unconditional stability of SPH to problems involving wall boundary conditions. The result is formulated within the framework of the Boundary Integrals technique. The proposal is tested on a number of cases: normal impact against a wall, adiabatic oscillations of a piston, dam break, and the water landing of a spacecraft.
title Boundary conditions for SPH through energy conservation
topic Fluid Dynamics
url https://arxiv.org/abs/2410.08573