A Unified Gas-Kinetic Particle Method for Radiation Transport in an Anisotropic Scattering Medium

Author:

Hu Yuan1ORCID,Liu Chang1ORCID,Shen Huayun1,Xiao Gang1,Li Jinghong1

Affiliation:

1. Institute of Applied Physics and Computational Mathematics, Beijing 100094, China

Abstract

In this paper, a unified gas kinetic particle (UGKP) method is developed for radiative transfer in both absorbing and anisotropic scattering media. This numerical method is constructed based on our theoretical work on the model reduction for an anisotropic scattering system. The macroscopic solver of this method directly solves the macroscopic anisotropic diffusion equations, eliminating the need to solve higher-order moment equations. The reconstruction of macroscopic scattering source in the microscopic solver, based on the multiscale equivalent phase function we proposed in this work, has also been simplified as one single scattering process, significantly reducing the computational costs. The proposed method has also the property of asymptotic preserving. In the optically thick regime, the proposed method solves the diffusion limit equations for an anisotropic system. In the optically thin regime, the kinetic processes of photon transport are simulated. The consistency and efficiency of the proposed method have been validated by numerical tests in a wide range of flow regimes. The novel equivalent scattering source reconstruction can be used for various transport processes, and the proposed numerical scheme is widely applicable in high-energy density engineering applications.

Funder

National Natural Science Foundation of China

Beijing Natural Science Foundation

National Key R&D Program of China

Presidential Foundation of the China Academy of Engineering Physics

Publisher

MDPI AG

Subject

General Physics and Astronomy

Reference45 articles.

1. The dependent scattering effect on radiative properties of micro/nanoscale discrete disordered media;Wang;Annu. Rev. Heat Transf.,2020

2. Losseva, T.V. (July, January 29). Method for radiation transfer calculation in numerical simulation of strong perturbation in the atmosphere. Proceedings of the 26th International Symposium on Atmospheric and Ocean Optics, Atmospheric Physics, Moscow, Russia.

3. Electric Processes in Atmospheric Air;Smirnov;High Temp.,2022

4. Dream fusion in octahedral spherical hohlraum;Lan;Matter Radiat. Extrem.,2022

5. Determination of laser entrance hole size for ignition-scale octahedral spherical hohlraums;Chen;Matter Radiat. Extrem.,2022

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