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Optical depth in polarised Monte Carlo radiative transfer

机译:极化蒙特卡洛辐射转移的光学深度

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Context. The Monte Carlo method is the most widely used method to solve radiative transfer problems in astronomy, especially in a fully general 3D geometry. A crucial concept in any Monte Carlo radiative transfer code is the random generation of the next interaction location. In polarised Monte Carlo radiative transfer with aligned non-spherical grains, the nature of dichroism complicates the concept of optical depth. Aims. We investigate, in detail, the relation between optical depth and the optical properties and density of the attenuating medium in polarised Monte Carlo radiative transfer codes that take dichroic extinction into account. Methods. Based on solutions for the radiative transfer equation, we discuss the optical depth scale in polarised radiative transfer with spheroidal grains. We compare the dichroic optical depth to the extinction and total optical depth scale. Results. In a dichroic medium, the optical depth is not equal to the usual extinction optical depth, nor to the total optical depth. For representative values of the optical properties of dust grains, the dichroic optical depth can differ from the extinction or total optical depth by several tens of percent. A closed expression for the dichroic optical depth cannot be given, but it can be derived efficiently through an algorithm that is based on the analytical result corresponding to elongated grains with a uniform grain alignment. Conclusions. Optical depth is more complex in dichroic media than in systems without dichroic attenuation, and this complexity needs to be considered when generating random free path lengths in Monte Carlo radiative transfer simulations. There is no benefit in using approximations instead of the dichroic optical depth.
机译:上下文。蒙特卡洛方法是解决天文学中辐射传递问题(尤其是在完全通用的3D几何中)时使用最广泛的方法。任何蒙特卡洛辐射转移代码中的一个关键概念是下一个交互位置的随机生成。在具有对齐的非球形晶粒的极化蒙特卡罗辐射传递中,二向色性使光学深度的概念复杂化。目的我们详细研究了在考虑了二向色性消光的极化蒙特卡罗辐射转移码中,光学深度与衰减介质的光学特性和密度之间的关系。方法。基于辐射传递方程的解,我们讨论了球状偏振辐射传递中的光学深度尺度。我们将二向色性光学深度与消光和总光学深度标度进行比较。结果。在二向色性介质中,光学深度不等于通常的消光光学深度,也不等于总光学深度。对于灰尘颗粒的光学特性的代表值,二向色光学深度可能与消光或总光学深度相差百分之几十。不能给出二向色光学深度的闭合表达式,但是可以通过基于与具有均匀晶粒排列的细长晶粒相对应的分析结果的算法来有效地得出该闭合表达式。结论。与没有二向色性衰减的系统相比,二向色性介质中的光学深度要复杂得多,在蒙特卡洛辐射传输模拟中生成随机的自由光程长度时,必须考虑这种复杂性。使用近似值代替二向色光学深度没有好处。

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