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SPRAY: A smoothed particle radiation hydrodynamics code for modeling high intensity laser-plasma interactions

Authors
Jung, Min KiKim, HakhyeonPark, Su-SanKim, Eung SooNa, Yong-SuHahn, Sang June
Issue Date
Jul-2024
Publisher
Academic Press Inc.
Keywords
High energy density physics; HEDP; Laser-plasma interaction; Radiation hydrodynamics; RHD; Smoothed particle hydrodynamics; SPH
Citation
Journal of Computational Physics, v.508
Journal Title
Journal of Computational Physics
Volume
508
URI
https://scholarworks.bwise.kr/cau/handle/2019.sw.cau/73569
DOI
10.1016/j.jcp.2024.113000
ISSN
0021-9991
1090-2716
Abstract
Here we report the development of SPRAY, a massively parallel GPU accelerated, smoothed particle hydrodynamics (SPH)-based, radiation hydrodynamics (RHD) code designed specifically for simulating high intensity laser-plasma interactions. When a target is irradiated by an intense laser, highly complex fluid deformation occurs due to instabilities, which is challenging to study numerically. SPRAY is particle-based, mesh-free, and Lagrangian, which addresses numerical issues that posed difficulties to existing methods. Its SPH formulations for RHD governing equations are tailored toward accurate and reliable simulations of laser-target irradiation phenomena, and are solved via a time-dependent, flux-limited diffusion method. A new laser energy coupling module, which is based on the Wentzel-Kramers-Brillouin (WKB) approximation, is implemented with a totally mesh-free ray-tracing scheme that is applicable for arbitrary geometry and dimensions. The accuracy and reliability of the code are demonstrated with a series of benchmark problems. To the authors' knowledge, this is the first attempt to employ SPH method for simulations of laser-plasma interactions in high energy density physics research. Possible expansions to the code, such as laser beam-beam interaction modeling and more sophisticated multi-group radiation transport are left for future development. © 2024 Elsevier Inc.
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자연과학대학 (물리학과)
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