An Efficient B-Spline Lagrangian/Eulerian Method for Compressible Flow, Shock Waves, and Fracturing Solids

Author:

Cao Yadi1ORCID,Chen Yunuo1ORCID,Li Minchen1ORCID,Yang Yin2ORCID,Zhang Xinxin3,Aanjaneya Mridul4,Jiang Chenfanfu1

Affiliation:

1. UCLA, Los Angeles, CA

2. Clemson University, Clemson, SC

3. Zenus Technology, Shenzhen Guangdong, China

4. Rutgers University, Piscataway, NJ

Abstract

This study presents a new method for modeling the interaction between compressible flow, shock waves, and deformable structures, emphasizing destructive dynamics. Extending advances in time-splitting compressible flow and the Material Point Methods (MPM), we develop a hybrid Eulerian and Lagrangian/Eulerian scheme for monolithic flow-structure interactions. We adopt the second-order WENO scheme to advance the continuity equation. To stably resolve deforming boundaries with sub-cell particles, we propose a blending treatment of reflective and passable boundary conditions inspired by the theory of porous media. The strongly coupled velocity-pressure system is discretized with a new mixed-order finite element formulation employing B-spline shape functions. Shock wave propagation, temperature/density-induced buoyancy effects, and topology changes in solids are unitedly captured.

Funder

NSF

DOE ORNL

Rutgers University startup

Publisher

Association for Computing Machinery (ACM)

Subject

Computer Graphics and Computer-Aided Design

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