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On the origins of polarization holes in Bok globules

机译:Bok球中的偏振孔的起源

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Context. Polarimetric observations of Bok globules frequently show a decrease in the degree of polarization towards their central dense regions (polarization holes). This behaviour is usually explained with increased disalignment owing to high density and temperature, or insufficient angular resolution of a possibly complex magnetic field structure. Aims. We investigate whether a significant decrease in polarized emission of dense regions in Bok globules is possible under certain physical conditions. For instance, we evaluate the impact of optical depth effects and various properties of the dust phase. Methods. We use radiative transfer modelling to calculate the temperature structure of an analytical Bok globule model and simulate the polarized thermal emission of elongated dust grains. For the alignment of the dust grains, we consider a magnetic field and include radiative torque and internal alignment. Results. Besides the usual explanations, selected conditions of the temperature and density distribution, the dust phase and the magnetic field are also able to significantly decrease the polarized emission of dense regions in Bok globules. Taking submm/mm grains and typical column densities of existing Bok globules into consideration, the optical depth is high enough to decrease the degree of polarization by up to Δ P ~ 10% . If limited to the densest regions, dust grain growth to submm/mm size and accumulated graphite grains decrease the degree of polarization by up to Δ P ~ 10% and Δ P ~ 5% , respectively. However, the effect of the graphite grains occurs only if they do not align with the magnetic field.
机译:上下文。博克小球的极化观察经常显示出朝向其中心密集区域(极化孔)的极化程度降低。由于高密度和高温,或者可能复杂的磁场结构的角分辨率不足,通常会​​以增加的错位来解释这种行为。目的我们调查在特定的物理条件下Bok球中的密集区域的极化发射是否有可能显着降低。例如,我们评估了光学深度效应和粉尘相各种性质的影响。方法。我们使用辐射传递模型来计算解析Bok球状模型的温度结构,并模拟细长粉尘颗粒的极化热发射。对于灰尘颗粒的排列,我们考虑磁场,并包括辐射扭矩和内部排列。结果。除了通常的解释之外,温度和密度分布,尘埃相和磁场的选定条件还能够显着降低Bok小球中密集区域的极化发射。考虑到现有Bok小球的亚毫米/毫米晶粒和典型的列密度,光学深度足够高,可以将偏振度降低多达ΔP〜10%。如果限制在最密集的区域,则灰尘颗粒的生长达到亚毫米/毫米大小,并且累积的石墨颗粒会分别将极化程度降低多达ΔP〜10%和ΔP〜5%。但是,仅当石墨颗粒不与磁场对齐时,才会发生这种影响。

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