Spatial second-order positive and asymptotic preserving filtered $P_N$ schemes for nonlinear radiative transfer equations
Xiaojing Xu, Song Jiang, Wenjun Sun

TL;DR
This paper introduces a novel second-order spatial scheme for nonlinear radiative transfer equations that is positive, asymptotic preserving, and reduces ray effects, using a filtered spherical harmonics method within the UGKS framework.
Contribution
The paper develops the first spatial second-order, positive, asymptotic preserving scheme for nonlinear radiative transfer equations without operator splitting.
Findings
Scheme maintains positivity of radiative energy density and temperature.
Scheme is asymptotic preserving in different regimes.
Numerical experiments validate the scheme's properties.
Abstract
A spatial second-order scheme for the nonlinear radiative transfer equations is introduced in this paper. The discretization scheme is based on the filtered spherical harmonics () method for the angular variable and the unified gas kinetic scheme (UGKS) framework for the spatial and temporal variables respectively. In order to keep the scheme positive and second-order accuracy, firstly, we use the implicit Monte Carlo linearization method [6] in the construction of the UGKS numerical boundary fluxes. Then, by carefully analyzing the constructed second-order fluxes involved in the macro-micro decomposition, which is induced by the angular discretization, we establish the sufficient conditions that guarantee the positivity of the radiative energy density and material temperature. Finally, we employ linear scaling limiters for the angular variable in the reconstruction…
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Taxonomy
TopicsRadiative Heat Transfer Studies · Gas Dynamics and Kinetic Theory · Optical Imaging and Spectroscopy Techniques
