磁性、动力学和过渡机制:压缩 MHD 湍流的空间分隔结构

Guang-Xing Li, Mengke Zhao
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引用次数: 0

摘要

湍流是一种复杂的物理过程,出现在现代物理学的多个领域,在星际气体等电离环境中,磁场可能具有重要的动力学作用。然而,磁场在电离气体中的确切功能仍不清楚。我们用$M_{\rm A} =\sqrt{E_{\rm k}/E_B} $来描述磁场对湍流运动的重要性,并揭示了不同的相互作用方式。在低$M_{\rm A}$(磁机制)下,磁场被描述为无力。尽管磁场很强,但气体运动并不与磁场保持一致。在中$M_{\rm A}$(磁动转换体系)下,速度场和磁场呈现出最高程度的对齐,这可能是快速弛豫的结果;在高$M_{\rm A}$(动能体系)下,磁场和速度场都是不规则的,没有对齐。我们在对星际气体的观测中发现了与这些机制对应的观测结果。这些结果突显了气体在 MHD 湍流中的多样行为,并为未来解释磁场在天体物理观测中的作用提供了指导。
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Magnetic, Kinetic, and Transition regime: Spatially-segregated structure of compressive MHD turbulence
Turbulence is a complex physical process that emerges in multiple areas of modern physics, and in ionized environments such as interstellar gas, the magnetic field can be dynamically important. However, the exact function of the magnetic field in the ionized gas remains unclear. We use the $M_{\rm A} = \sqrt{E_{\rm k}/E_B} $ to describe the importance of the magnetic field measured to the turbulent motion, and reveal diverse ways of mutual interaction. At low $M_{\rm A}$ (magnetic regime), the magnetic field is well-described as force-free. Despite the strong magnetic field, the motion of gas does not stay aligned with the magnetic field. At the regime of intermediate $M_{\rm A}$ (magnetic-kinetic transition regime), the velocity field and the magnetic field exhibit the highest degree of alignment, which is likely the result of a rapid relaxation. At high $M_{\rm A}$ (kinetic regime), both the magnetic field and the velocity field are irregular, with no alignment. We find observational counterparts to these regimes in observations of interstellar gas. The results highlight the diverse behavior of gas in MHD turbulence and guide future interpretations of the role of the magnetic field in astrophysical observations.
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