谷歌Chrome浏览器插件
订阅小程序
在清言上使用

Shock-Multicloud Interactions In Galactic Outflows - Ii. Radiative Fractal Clouds And Cold Gas Thermodynamics

MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY(2021)

引用 19|浏览25
暂无评分
摘要
Galactic winds are crucial to the cosmic cycle of matter, transporting material out of the dense regions of galaxies. Observations show the coexistence of different temperature phases in such winds, which is not easy to explain. We present a set of 3D shock-multicloud simulations that account for radiative heating and cooling at temperatures between 10(2) and 10(7) K. The interplay between shock heating, dynamical instabilities, turbulence, and radiative heating and cooling creates a complex multiphase flow with a rain-like morphology. Cloud gas fragments and is continuously eroded, becoming efficiently mixed and mass loaded. The resulting warm mixed gas then cools down and precipitates into new dense cloudlets, which repeat the process. Thus, radiative cooling is able to sustain fast-moving dense gas by aiding condensation of gas from warm clouds and the hot wind. In the ensuing outflow, hot gas with temperatures greater than or similar to 10(6) K outruns the warm and cold phases, which reach thermal equilibrium near approximate to 10(4) and approximate to 10(2) K, respectively. Although the volume filling factor of hot gas is higher in the outflow, most of the mass is concentrated in dense gas cloudlets and filaments with these temperatures. More porous multicloud layers result in more vertically extended outflows, and dense gas is more efficiently produced in more compact layers. The cold phase is not accelerated by ram pressure, but, instead, precipitates from warm and mixed gas out of thermal equilibrium. This cycle can explain the presence of high-velocity HI gas with N-HI = 10(19-21) and Delta(nu FWHM) less than or similar to 37 km s(-1) in the Galactic Centre outflow.
更多
查看译文
关键词
hydrodynamics, turbulence, methods: numerical, ISM: clouds, galaxies: ISM, galaxies: starburst
AI 理解论文
溯源树
样例
生成溯源树,研究论文发展脉络
Chat Paper
正在生成论文摘要