论文标题

红外云云中旋转和磁场形态的某些方面G34.43+00.24

Some Aspects of Rotation and Magnetic Field Morphology in the Infrared Dark Cloud G34.43+00.24

论文作者

Vahdanian, Hamed, Nejad-Asghar, Mohsen

论文摘要

红外云(IRDC)是分子云,其磁场强度相对较高。例如,IRDC G34.43+00.24(G34)的磁场强度为几百个微型高器。在这项研究中,我们研究了IRDC(例如G34)中带电颗粒的动态运动是否可以在其内部产生这种磁场强度。观察结果表明,G34的视线速度具有全球梯度。我们假设测得的全局速度梯度可以对应于云旋转。我们将大规模电流密度归因于该旋转的云通过考虑电荷中立性不完整的恒定值以及具有非常低电离分数的正粒子和负颗粒之间的速度差异。我们使用数值封装鱼盘在G34内的天际飞机上获得磁场强度及其形态。结果表明,磁场强度为数百个微孔,其形态在天际飞机上与观察结果有些一致。我们还获得了G34中磁场强度与密度之间的关系。结果表明,随着密度的增加,磁场强度大约作为幂律函数增加。功率量大约等于0.45,适用于具有强磁场的分子云。因此,我们可以得出结论,IRDC的动态运动,尤其是它们的旋转可以扩大其内部的磁场强度。

The infrared dark clouds (IRDCs) are molecular clouds with relatively greater values in their magnetic field strengths. For example, the IRDC G34.43+00.24 (G34) has magnetic field strength of the order of a few hundred micro-Gauss. In this study, we investigate if the dynamic motions of charged particles in an IRDC such as G34 can produce this magnetic field strength inside it. The observations show that the line-of-sight velocity of G34 has global gradient. We assume that the measured global velocity gradient can correspond to the cloud rotation. We attribute a large-scale current density to this rotating cloud by considering a constant value for the incompleteness of charge neutrality and the velocity differences between the positive and negative particles with very low ionization fractions. We use the numerical package FISHPACK to obtain the magnetic field strength and its morphology on the plane-of-sky within G34. The results show that the magnetic field strengths are of the order of several hundred micro-Gauss, and its morphology in the plane-of-sky is somewhat consistent with the observational results. We also obtain the relationship between magnetic field strength and density in G34. The results show that with increasing density, the magnetic field strength increases approximately as a power-law function. The amount of power is approximately equal to 0.45, which is suitable for molecular clouds with strong magnetic fields. Therefore, we can conclude that the dynamical motion of IRDCs, and especially their rotations, can amplify the magnetic field strengths within them.

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