FourPhonon_GPU: A GPU-accelerated framework for calculating phonon scattering rates and thermal conductivity

Fuente: arXiv
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Auteurs principaux: Guo, Ziqi, Ruan, Xiulin, Lin, Guang
Format: Preprint
Publié: 2025
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author Guo, Ziqi
Ruan, Xiulin
Lin, Guang
author_facet Guo, Ziqi
Ruan, Xiulin
Lin, Guang
contents Accurately predicting phonon scattering is crucial for understanding thermal transport properties. However, the computational cost of such calculations, especially for four-phonon scattering, can often be more prohibitive when large number of phonon branches and scattering processes are involved. In this work, we present FourPhonon_GPU, a GPU-accelerated framework for three-phonon and four-phonon scattering rate calculations based on the FourPhonon package. By leveraging OpenACC and adopting a heterogeneous CPU-GPU computing strategy, we efficiently offload massive, parallelizable tasks to the GPU while using the CPU for process enumeration and control-heavy operations. Our approach achieves over 25x acceleration for the scattering rate computation step and over 10x total runtime speedup without sacrificing accuracy. Benchmarking on various GPU architectures confirms the method's scalability and highlights the importance of aligning parallelization strategies with hardware capabilities. This work provides an efficient and accurate computational tool for phonon transport modeling and opens pathways for accelerated materials discovery.
format Preprint
id arxiv_https___arxiv_org_abs_2510_00518
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle FourPhonon_GPU: A GPU-accelerated framework for calculating phonon scattering rates and thermal conductivity
Guo, Ziqi
Ruan, Xiulin
Lin, Guang
Materials Science
Computational Physics
Accurately predicting phonon scattering is crucial for understanding thermal transport properties. However, the computational cost of such calculations, especially for four-phonon scattering, can often be more prohibitive when large number of phonon branches and scattering processes are involved. In this work, we present FourPhonon_GPU, a GPU-accelerated framework for three-phonon and four-phonon scattering rate calculations based on the FourPhonon package. By leveraging OpenACC and adopting a heterogeneous CPU-GPU computing strategy, we efficiently offload massive, parallelizable tasks to the GPU while using the CPU for process enumeration and control-heavy operations. Our approach achieves over 25x acceleration for the scattering rate computation step and over 10x total runtime speedup without sacrificing accuracy. Benchmarking on various GPU architectures confirms the method's scalability and highlights the importance of aligning parallelization strategies with hardware capabilities. This work provides an efficient and accurate computational tool for phonon transport modeling and opens pathways for accelerated materials discovery.
title FourPhonon_GPU: A GPU-accelerated framework for calculating phonon scattering rates and thermal conductivity
topic Materials Science
Computational Physics
url https://arxiv.org/abs/2510.00518