Cartesian 좌표기반 동적영역분할을 고려한 SPH의 충돌 및 병렬해석

The Contact and Parallel Analysis of SPH Using Cartesian Coordinate Based Domain Decomposition Method

초록

In this paper, a parallel analysis algorithm for Smoothed Particle Hydrodynamics (SPH), one of the numerical methods for fluidic materials, is introduced. SPH, which is a meshless method, can represent the behavior of a continuum using a particle-based approach, but it demands substantial computational resources. Therefore, parallel analysis algorithms are essential for SPH simulations. The domain decomposition algorithm, which divides the computational domain into partitions to be independently analyzed, is the most representative method among parallel analysis algorithms. In Discrete Element Method (DEM) and Molecular Dynamics (MD), the Cartesian coordinate-based domain decomposition method is popularly used because it offers advantages in quickly and conveniently accessing particle positions. However, in SPH, it is important to share particle information among partitioned domains because SPH particles are defined based on information from nearby particles within the smoothing length. Additionally, maintaining CPU load balance is crucial. In this study, a highly parallel efficient algorithm is proposed to dynamically minimize the size of orthogonal domain partitions to prevent excess CPU utilization. The efficiency of the proposed method was validated through numerical analysis models. The parallel efficiency of the proposed method is evaluated for up to 30 CPUs for fluidic models, achieving 90% parallel efficiency for up to 28 physical cores.

키워드

SPHParallel analysisDomain decompositionDynamic domain decompositionLoad balanceContact and impact methodSPH병렬해석영역분할동적영역분할로드밸런스충돌해석
제목
Cartesian 좌표기반 동적영역분할을 고려한 SPH의 충돌 및 병렬해석
제목 (타언어)
The Contact and Parallel Analysis of SPH Using Cartesian Coordinate Based Domain Decomposition Method
저자
탁문호
DOI
10.14481/jkges.2024.25.4.13
발행일
2024-04
저널명
한국지반환경공학회 논문집
25
4
페이지
13 ~ 20