Том: Parallel Computing Technologies: 18th International Conference, PaCT 2025 (Almaty, Kazakhstan, October 6-10, 2025)
Том: 16185
, Год издания: 2025
Многотомное издание: Parallel Computing Technologies: 18th International Conference, PaCT 2025 (Almaty, Kazakhstan, October 6-10, 2025)
Издатель: Springer International Publishing
, Место издания: Berlin
Страницы: 247-259
Аннотация
Geological formations represent complex multiphase systems comprising elastic solid matrices and fluid-saturated pore networks. While Biot's classical poroelastic theory has been widely adopted for wave propagation modeling, accumulated physical inconsistencies in describing dynamic filtration processes have motivated our numerical implementation of a Symmetric Hyperbolic Thermodynamically Compatible (HTC) model. This approach maintains rigorous physical validity across the complete spectrum of phase compositions in heterogeneous media. Our research focuses on optimizing parallel computation strategies for large-scale 3D wave field simulations in realistic poroelastic environments. We present a comparative analysis of two fundamental parallelization paradigms - distributed memory (MPI) and GPU-accelerated (CUDA) approaches - evaluating their computational effciency through scalability tests. The results of numerical experiments are presented and discussed.