Exascale Implicit Kinetic Plasma Simulations on El~Capitan for Solving the Micro-Macro Coupling in Magnetospheric Physics

Fuente: arXiv
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Main Authors: Markidis, Stefano, Hu, Andong, Peng, Ivy, Pennati, Luca, Lumsden, Ian, Yokelson, Dewi, Brink, Stephanie, Pearce, Olga, Scogland, Thomas R. W., de Supinski, Bronis R., Delzanno, Gian Luca, Taufer, Michela
Format: Preprint
Published: 2025
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author Markidis, Stefano
Hu, Andong
Peng, Ivy
Pennati, Luca
Lumsden, Ian
Yokelson, Dewi
Brink, Stephanie
Pearce, Olga
Scogland, Thomas R. W.
de Supinski, Bronis R.
Delzanno, Gian Luca
Taufer, Michela
author_facet Markidis, Stefano
Hu, Andong
Peng, Ivy
Pennati, Luca
Lumsden, Ian
Yokelson, Dewi
Brink, Stephanie
Pearce, Olga
Scogland, Thomas R. W.
de Supinski, Bronis R.
Delzanno, Gian Luca
Taufer, Michela
contents Our fully kinetic, implicit Particle-in-Cell (PIC) simulations of global magnetospheres on up to 32,768 of El Capitan's AMD Instinct MI300A Accelerated Processing Units (APUs) represent an unprecedented computational capability that addresses a fundamental challenge in space physics: resolving the multi-scale coupling between microscopic (electron-scale) and macroscopic (global-scale) dynamics in planetary magnetospheres. The implicit scheme of iPIC3D supports time steps and grid spacing that are up to 10 times larger than those of explicit methods, without sacrificing physical accuracy. This enables the simulation of magnetospheres while preserving fine-scale electron physics, which is critical for key processes such as magnetic reconnection and plasma turbulence. Our algorithmic and technological innovations include GPU-optimized kernels, particle control, and physics-aware data compression using Gaussian Mixture Models. With simulation domains spanning 100-1,000 ion skin depths, we reach the global scale of small-to-medium planetary magnetospheres, such as those of Mercury and Ganymede, which supports fully kinetic treatment of global-scale dynamics in systems previously out of reach for fully kinetic PIC codes.
format Preprint
id arxiv_https___arxiv_org_abs_2507_20719
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Exascale Implicit Kinetic Plasma Simulations on El~Capitan for Solving the Micro-Macro Coupling in Magnetospheric Physics
Markidis, Stefano
Hu, Andong
Peng, Ivy
Pennati, Luca
Lumsden, Ian
Yokelson, Dewi
Brink, Stephanie
Pearce, Olga
Scogland, Thomas R. W.
de Supinski, Bronis R.
Delzanno, Gian Luca
Taufer, Michela
Computational Engineering, Finance, and Science
Our fully kinetic, implicit Particle-in-Cell (PIC) simulations of global magnetospheres on up to 32,768 of El Capitan's AMD Instinct MI300A Accelerated Processing Units (APUs) represent an unprecedented computational capability that addresses a fundamental challenge in space physics: resolving the multi-scale coupling between microscopic (electron-scale) and macroscopic (global-scale) dynamics in planetary magnetospheres. The implicit scheme of iPIC3D supports time steps and grid spacing that are up to 10 times larger than those of explicit methods, without sacrificing physical accuracy. This enables the simulation of magnetospheres while preserving fine-scale electron physics, which is critical for key processes such as magnetic reconnection and plasma turbulence. Our algorithmic and technological innovations include GPU-optimized kernels, particle control, and physics-aware data compression using Gaussian Mixture Models. With simulation domains spanning 100-1,000 ion skin depths, we reach the global scale of small-to-medium planetary magnetospheres, such as those of Mercury and Ganymede, which supports fully kinetic treatment of global-scale dynamics in systems previously out of reach for fully kinetic PIC codes.
title Exascale Implicit Kinetic Plasma Simulations on El~Capitan for Solving the Micro-Macro Coupling in Magnetospheric Physics
topic Computational Engineering, Finance, and Science
url https://arxiv.org/abs/2507.20719