论文标题
湍流辐射混合层的解剖结构:来自具有湍流和粘度的分析模型的见解
The Anatomy of a Turbulent Radiative Mixing Layer: Insights from an Analytic Model with Turbulent Conduction and Viscosity
论文作者
论文摘要
在冷,致密的气体和热,弥漫性气体彼此运动的界面处形成湍流辐射混合层(TRML)。 TRML在各种尺度上的星系中和周围无处不在,包括银河风和环境培养基。它们具有有效的辐射冷却的中间温度气体,因此在控制星系的冷气供应,相结构和光谱特征方面起着至关重要的作用。在这项工作中,我们为TRML开发了一个直观的分析1.5维模型,其中包括有效的湍流电导率和粘度的简单参数化以及零件幂律冷却曲线。我们的分析模型以计算成本的一小部分重现了TRML的3D模拟的质量通量,总冷却和相结构。它还揭示了对TRML物理学的基本见解,尤其是随着剪切声数接近统一性,相对动能的粘性耗散在平衡辐射冷却中的重要性。这种耗散既发生在中等温度阶段,从而减少了热相的焓通量,也可以在冷相中降低辐射冷却。此外,我们的模型还提供了一种快速简便的方法来计算TRML的色谱柱密度和表面亮度,可以将其直接链接到观测值。
Turbulent Radiative Mixing Layers (TRMLs) form at the interface of cold, dense gas and hot, diffuse gas in motion with each other. TRMLs are ubiquitous in and around galaxies on a variety of scales, including galactic winds and the circumgalactic medium. They host the intermediate temperature gases that are efficient in radiative cooling, thus play a crucial role in controlling the cold gas supply, phase structure, and spectral features of galaxies. In this work, we develop an intuitive analytic 1.5 dimensional model for TRMLs that includes a simple parameterization of the effective turbulent conductivity and viscosity and a piece-wise power-law cooling curve. Our analytic model reproduces the mass flux, total cooling, and phase structure of 3D simulations of TRMLs at a fraction of the computational cost. It also reveals essential insights into the physics of TRMLs, particularly the importance of the viscous dissipation of relative kinetic energy in balancing radiative cooling as the shear Mach number approaches unity. This dissipation takes place both in the intermediate temperature phase, which reduces the enthalpy flux from the hot phase, and in the cold phase, which enhances radiative cooling. Additionally, our model provides a fast and easy way of computing the column density and surface brightness of TRMLs, which can be directly linked to observations.