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Phase-function normalization for accurate analysis of ultrafast collimated radiative transfer

机译:相函数归一化可精确分析超快准直辐射传输

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The scattering of radiation from collimated irradiation is accurately treated via normalization of phase function. This approach is applicable to any numerical method with directional discretization. In this study it is applied to the transient discrete-ordinates method for ultrafast collimated radiative transfer analysis in turbid media. A technique recently developed by the authors, which conserves a phase-function asymmetry factor as well as scattered energy for the Henyey-Greenstein phase function in steady-state diffuse radiative transfer analysis, is applied to the general Legendre scattering phase function in ultrafast collimated radiative transfer. Heat flux profiles in a model tissue cylinder are generated for various phase functions and compared to those generated when normalization of the collimated phase function is neglected. Energy deposition in the medium is also investigated. Lack of conservation of scattered energy and the asymmetry factor for the collimated scattering phase function causes overpredictions in both heat flux and energy deposition for highly anisotropic scattering media. In addition, a discussion is presented to clarify the time-dependent formulation of divergence of radiative heat flux.
机译:通过相位函数的归一化,可以精确地处理来自准直辐射的辐射散射。该方法适用于任何带有方向离散的数值方法。在这项研究中,它适用于瞬态离散坐标法,用于浊介质中的超快速准直辐射传输分析。作者最近开发的一种技术,在稳态扩散辐射转移分析中保留了相位函数不对称因子以及Henyey-Greenstein相位函数的散射能量,将其应用于超快准直辐射中的一般Legendre散射相位函数。转让。针对各种相位函数生成模型组织圆柱体中的热通量曲线,并将其与忽略准直相位函数的归一化时生成的热通量曲线进行比较。还研究了介质中的能量沉积。对于高度各向异性的散射介质,缺乏散射能量守恒和准直散射相位函数的不对称因子会导致热通量和能量沉积的过度预测。另外,提出了一个讨论以阐明辐射热通量发散的时间相关公式。

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