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Multi-GPU Immersed Boundary Method Hemodynamics Simulations.

Publication ,  Journal Article
Ames, J; Puleri, DF; Balogh, P; Gounley, J; Draeger, EW; Randles, A
Published in: Journal of computational science
July 2020

Large-scale simulations of blood flow that resolve the 3D deformation of each comprising cell are increasingly popular owing to algorithmic developments in conjunction with advances in compute capability. Among different approaches for modeling cell-resolved hemodynamics, fluid structure interaction (FSI) algorithms based on the immersed boundary method are frequently employed for coupling separate solvers for the background fluid and the cells within one framework. GPUs can accelerate these simulations; however, both current pre-exascale and future exascale CPU-GPU heterogeneous systems face communication challenges critical to performance and scalability. We describe, to our knowledge, the largest distributed GPU-accelerated FSI simulations of high hematocrit cell-resolved flows with over 17 million red blood cells. We compare scaling on a fat node system with six GPUs per node and on a system with a single GPU per node. Through comparison between the CPU- and GPU-based implementations, we identify the costs of data movement in multiscale multi-grid FSI simulations on heterogeneous systems and show it to be the greatest performance bottleneck on the GPU.

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Published In

Journal of computational science

DOI

ISSN

1877-7503

Publication Date

July 2020

Volume

44

Start / End Page

101153

Related Subject Headings

  • 4901 Applied mathematics
  • 4606 Distributed computing and systems software
  • 4602 Artificial intelligence
  • 0806 Information Systems
  • 0802 Computation Theory and Mathematics
 

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Ames, J., Puleri, D. F., Balogh, P., Gounley, J., Draeger, E. W., & Randles, A. (2020). Multi-GPU Immersed Boundary Method Hemodynamics Simulations. Journal of Computational Science, 44, 101153. https://doi.org/10.1016/j.jocs.2020.101153
Ames, Jeff, Daniel F. Puleri, Peter Balogh, John Gounley, Erik W. Draeger, and Amanda Randles. “Multi-GPU Immersed Boundary Method Hemodynamics Simulations.Journal of Computational Science 44 (July 2020): 101153. https://doi.org/10.1016/j.jocs.2020.101153.
Ames J, Puleri DF, Balogh P, Gounley J, Draeger EW, Randles A. Multi-GPU Immersed Boundary Method Hemodynamics Simulations. Journal of computational science. 2020 Jul;44:101153.
Ames, Jeff, et al. “Multi-GPU Immersed Boundary Method Hemodynamics Simulations.Journal of Computational Science, vol. 44, July 2020, p. 101153. Epmc, doi:10.1016/j.jocs.2020.101153.
Ames J, Puleri DF, Balogh P, Gounley J, Draeger EW, Randles A. Multi-GPU Immersed Boundary Method Hemodynamics Simulations. Journal of computational science. 2020 Jul;44:101153.
Journal cover image

Published In

Journal of computational science

DOI

ISSN

1877-7503

Publication Date

July 2020

Volume

44

Start / End Page

101153

Related Subject Headings

  • 4901 Applied mathematics
  • 4606 Distributed computing and systems software
  • 4602 Artificial intelligence
  • 0806 Information Systems
  • 0802 Computation Theory and Mathematics