A massively parallel time-domain coupled electrodynamics–micromagnetics solver

Author:

Yao Zhi1ORCID,Jambunathan Revathi1ORCID,Zeng Yadong2ORCID,Nonaka Andrew1ORCID

Affiliation:

1. Lawrence Berkeley National Laboratory, Berkeley, CA, USA

2. University of Minnesota Twin Cities, Minneapolis, MN, USA

Abstract

We present a high-performance coupled electrodynamics–micromagnetics solver for full physical modeling of signals in microelectronic circuitry. The overall strategy couples a finite-difference time-domain approach for Maxwell’s equations to a magnetization model described by the Landau–Lifshitz–Gilbert equation. The algorithm is implemented in the Exascale Computing Project software framework, AMReX, which provides effective scalability on manycore and GPU-based supercomputing architectures. Furthermore, the code leverages ongoing developments of the Exascale Application Code, WarpX, which is primarily being developed for plasma wakefield accelerator modeling. Our temporal coupling scheme provides second-order accuracy in space and time by combining the integration steps for the magnetic field and magnetization into an iterative sub-step that includes a trapezoidal temporal discretization for the magnetization. The performance of the algorithm is demonstrated by the excellent scaling results on NERSC multicore and GPU systems, with a significant (59×) speedup on the GPU using a node-by-node comparison. We demonstrate the utility of our code by performing simulations of an electromagnetic waveguide and a magnetically tunable filter.

Funder

Office of Science

Publisher

SAGE Publications

Subject

Hardware and Architecture,Theoretical Computer Science,Software

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