arXiv · 2606.18927
APU-Accelerated Large Eddy Simulation with the Discontinuous Galerkin Solver GAL{\AE}XI
Abstract
The exascale computing era, driven by heterogeneous GPU architectures, requires a fundamental redesign of traditional CFD solvers to fully leverage those heterogeneous systems. The discontinuous Galerkin spectral element method (DGSEM) provides an ideal foundation for this transition due to its high-order accuracy and local computational stencil. This work presents recent advances in the development and application of the architecture-agnostic DGSEM framework GAL{\AE}XI by linking hardware optimization, software implementation, and physical validation. The performance of GAL{\AE}XI on the AMD MI300A Accelerated Processing Units (APUs) featured on the Hunter supercomputer is analyzed. Specifically, evaluations of the strong and weak scaling performance and the impact of the compute partitioning modes available on the AMD MI300As are performed. Second, the strategy used to integrate the algorithms necessary for wall-modeled large eddy simulations into the GPU-accelerated framework is outlined. Validation of those algorithms is presented in the form of a plane turbulent channel testcase. Finally, the solver is applied to a demanding flow problem in the form of a wall-resolved large eddy simulation of a transonic compressor cascade. The results from this investigation demonstrate the capabilities of GAL{\AE}XI to accurately capture complex shock-wave/turbulent boundary-layer interactions.
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Spencer Starr, Anna Schwarz, Justin Du Plessis, Andreas Wanninger, Johanna Hintz, Rohan Kaushik, Patrick Kopper, Andrea Beck. 2026-06-17. APU-Accelerated Large Eddy Simulation with the Discontinuous Galerkin Solver GAL{\AE}XI. https://arxiv.org/abs/2606.18927
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