Massively Parallel Phase-Field Simulations for Ternary Eutectic Directional Solidification
June 04, 2015 Β· Declared Dead Β· π International Conference for High Performance Computing, Networking, Storage and Analysis
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Authors
Martin Bauer, Johannes HΓΆtzer, Philipp Steinmetz, Marcus Jainta, Marco Berghoff, Florian Schornbaum, Christian Godenschwager, Harald KΓΆstler, Britta Nestler, Ulrich RΓΌde
arXiv ID
1506.01684
Category
cs.DC: Distributed Computing
Cross-listed
physics.comp-ph
Citations
44
Venue
International Conference for High Performance Computing, Networking, Storage and Analysis
Last Checked
6 months ago
Abstract
Microstructures forming during ternary eutectic directional solidification processes have significant influence on the macroscopic mechanical properties of metal alloys. For a realistic simulation, we use the well established thermodynamically consistent phase-field method and improve it with a new grand potential formulation to couple the concentration evolution. This extension is very compute intensive due to a temperature dependent diffusive concentration. We significantly extend previous simulations that have used simpler phase-field models or were performed on smaller domain sizes. The new method has been implemented within the massively parallel HPC framework waLBerla that is designed to exploit current supercomputers efficiently. We apply various optimization techniques, including buffering techniques, explicit SIMD kernel vectorization, and communication hiding. Simulations utilizing up to 262,144 cores have been run on three different supercomputing architectures and weak scalability results are shown. Additionally, a hierarchical, mesh-based data reduction strategy is developed to keep the I/O problem manageable at scale.
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