English

An integrated heterogeneous computing framework for ensemble simulations of laser-induced ignition

Computational Engineering, Finance, and Science 2022-02-08 v1 Distributed, Parallel, and Cluster Computing Data Analysis, Statistics and Probability Fluid Dynamics

Abstract

An integrated computational framework is introduced to study complex engineering systems through physics-based ensemble simulations on heterogeneous supercomputers. The framework is primarily designed for the quantitative assessment of laser-induced ignition in rocket engines. We develop and combine an implicit programming system, a compressible reacting flow solver, and a data generation/management strategy on a robust and portable platform. We systematically present this framework using test problems on a hybrid CPU/GPU machine. Efficiency, scalability, and accuracy of the solver are comprehensively assessed with canonical unit problems. Ensemble data management and autoencoding are demonstrated using a canonical diffusion flame case. Sensitivity analysis of the ignition of a turbulent, gaseous fuel jet is performed using a simplified, three-dimensional model combustor. Our approach unifies computer science, physics and engineering, and data science to realize a cross-disciplinary workflow. The framework is exascale-oriented and can be considered a benchmark for future computational science studies of real-world systems.

Keywords

Cite

@article{arxiv.2202.02319,
  title  = {An integrated heterogeneous computing framework for ensemble simulations of laser-induced ignition},
  author = {Kazuki Maeda and Thiago Teixeira and Jonathan M. Wang and Jeffrey M. Hokanson and Caetano Melone and Mario Di Renzo and Steve Jones and Javier Urzay and Gianluca Iaccarino},
  journal= {arXiv preprint arXiv:2202.02319},
  year   = {2022}
}

Comments

28 pages, 12 figures

R2 v1 2026-06-24T09:20:43.417Z