论文标题

一个新的蒙特卡罗辐射转移模拟,对回旋谐振散射特征

A New Monte-Carlo Radiative Transfer Simulation of Cyclotron Resonant Scattering Features

论文作者

Kumar, Sandeep, Bala, Suman, Bhattacharya, Dipankar

论文摘要

我们提出了一种新的蒙特卡罗辐射传输代码,我们用该代码对可变磁场和等离子体密度的环境中的回旋线线特征进行建模。该代码接受输入连续体,并仅通过包括三个回旋谐振过程(回旋子吸收,回旋子发射,回旋体散射)来执行线转移。随后,计算重力红移和光弯曲对新兴光谱的影响。我们已经应用了代码来预测三种不同发射几何形状的可观察光谱。 1)恒星表面附近的光学薄板,2)由积聚物的积累形成的积聚丘,3)代表沉降流到恒星的区域的增生柱。我们的结果表明,发射体积的局部新兴光谱是各向异性的。但是,在存在强光的情况下,各向异性弯曲大大降低。在可观察到的回旋体光谱中,这种平均也大大降低了谐波的强度高于第二。我们发现,均匀的场板会产生太狭窄的线特征,并且与来自各种来源观察到的光谱特征的平均宽度相比,具有较大磁性扭曲的土丘产生的特征太宽。与观察到的那些相似,具有轻轻变化(偶极子)场的圆柱在中间范围内产生宽度。

We present a new Monte-Carlo radiative transfer code, which we have used to model the cyclotron line features in the environment of a variable magnetic field and plasma density. The code accepts an input continuum and performs only the line transfer by including the three cyclotron resonant processes (cyclotron absorption, cyclotron emission, cyclotron scattering). Subsequently, the effects of gravitational red-shift and light bending on the emergent spectra are computed. We have applied our code to predict the observable spectra from three different emission geometries; 1) an optically thin slab near the stellar surface, 2) an accretion mound formed by the accumulation of the accreted matter, 3) an accretion column representing the zone of a settling flow onto the star. Our results show that the locally emergent spectra from the emission volume are significantly anisotropic. However, in the presence of strong light bending the anisotropy reduces considerably. This averaging also drastically reduces the strength of harmonics higher than second in the observable cyclotron spectra. We find that uniform field slabs produce line features that are too narrow, and mounds with large magnetic distortions produce features that are too wide compared to the average widths of the spectral features observed from various sources. The column with a gently varying (dipole) field produces widths in the intermediate range, similar to those observed.

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