Saved in:
Bibliographic Details
Main Authors: Huang, Minsheng, Wang, Pan, Yao, Chengbao, Cheng, Lidong, Ying, Wenjun
Format: Preprint
Published: 2024
Subjects:
Online Access:https://arxiv.org/abs/2411.02407
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866912105278472192
author Huang, Minsheng
Wang, Pan
Yao, Chengbao
Cheng, Lidong
Ying, Wenjun
author_facet Huang, Minsheng
Wang, Pan
Yao, Chengbao
Cheng, Lidong
Ying, Wenjun
contents We establish a high-resolution, high-performance, and high-confidence compressible multiphysics system in a Cartesian grid with irregular boundary topologies to simulate intensive blast waves propagating in large-scale and extremely complex environments. The multiphysics system is modeled by a multi-component model solved using a generalized Godunov method and a classical material point method in a combination of Lagrangian particles and a rigid material model. An artificial neural network equation of state (EOS) is proposed based on experimental data to simulate the intensive explosion products and real gas under extreme pressure and temperature. To improve computational accuracy and efficiency, a deepMTBVD reconstruction scheme of our previous work is extended to the multiphysics system. With the aid of high-performance parallel computation, several large-scale blast wave applications, such as blast wave propagating in a local and entire urban city, are simulated in a reasonable time period, which can validate numerical schemes and lead to more practical engineering applications.
format Preprint
id arxiv_https___arxiv_org_abs_2411_02407
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle A Robust and Efficient Multi-physics Numerical System for Intensive Blast Wave Propagation in Complex Environments
Huang, Minsheng
Wang, Pan
Yao, Chengbao
Cheng, Lidong
Ying, Wenjun
Computational Physics
We establish a high-resolution, high-performance, and high-confidence compressible multiphysics system in a Cartesian grid with irregular boundary topologies to simulate intensive blast waves propagating in large-scale and extremely complex environments. The multiphysics system is modeled by a multi-component model solved using a generalized Godunov method and a classical material point method in a combination of Lagrangian particles and a rigid material model. An artificial neural network equation of state (EOS) is proposed based on experimental data to simulate the intensive explosion products and real gas under extreme pressure and temperature. To improve computational accuracy and efficiency, a deepMTBVD reconstruction scheme of our previous work is extended to the multiphysics system. With the aid of high-performance parallel computation, several large-scale blast wave applications, such as blast wave propagating in a local and entire urban city, are simulated in a reasonable time period, which can validate numerical schemes and lead to more practical engineering applications.
title A Robust and Efficient Multi-physics Numerical System for Intensive Blast Wave Propagation in Complex Environments
topic Computational Physics
url https://arxiv.org/abs/2411.02407