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Szoke, A; Brooks, E D; McKinley, M; Daffin, F
Lawrence Livermore National Laboratory LLNL, Livermore, CA (United States). Funding organisation: US Department of Energy (United States)2005
Lawrence Livermore National Laboratory LLNL, Livermore, CA (United States). Funding organisation: US Department of Energy (United States)2005
AbstractAbstract
[en] The equations of radiation transport for thermal photons are notoriously difficult to solve in thick media without resorting to asymptotic approximations such as the diffusion limit. One source of this difficulty is that in thick, absorbing media thermal emission is almost completely balanced by strong absorption. In a previous publication [SB03], the photon transport equation was written in terms of the deviation of the specific intensity from the local equilibrium field. We called the new form of the equations the difference formulation. The difference formulation is rigorously equivalent to the original transport equation. It is particularly advantageous in thick media, where the radiation field approaches local equilibrium and the deviations from the Planck distribution are small. The difference formulation for photon transport also clarifies the diffusion limit. In this paper, the transport equation is solved by the Symbolic Implicit Monte Carlo (SIMC) method and a comparison is made between the standard formulation and the difference formulation. The SIMC method is easily adapted to the derivative source terms of the difference formulation, and a remarkable reduction in noise is obtained when the difference formulation is applied to problems involving thick media
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30 Mar 2005; vp; Computational Methods in Transport Workshop; Lake Tahoe, CA NV (United States); 11-16 Sep 2004; W-7405-ENG-48; Available from https://e-reports-ext.llnl.gov/pdf/318438.pdf; PURL: https://www.osti.gov/servlets/purl/918402-Xy2oam/; PDF-FILE: 31 ; SIZE: 1 MBYTES
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