论文标题
Galaxy流出III的冷云发射:磁场的影响
The Launching of Cold Clouds by Galaxy Outflows III: The Influence of Magnetic Fields
论文作者
论文摘要
通过观察到流量的观测,我们研究了磁场和辐射冷却对嵌入热风中的冷云的演变的综合影响。我们执行三维自适应网状细化,磁性水力学模拟的集合,这些模拟跨越了两种分辨率,并包括对齐和横向与即将到来的超级alfvénic材料的磁场。在非磁化情况下,对齐的田地对云的整体寿命几乎没有影响,尽管它们确实会增加风和云材料之间的混合$ \ \ \3。$横向磁场导致磁性悬垂,这会隔离云,但它们也沿垂直于田间线的方向挤压了材料,导致质量质量快速质量损失。一项分辨率研究表明,磁化模拟的收敛性能比非磁性模拟更好,并且每个云半径的64个区域的分辨率足以准确地描述这些相互作用。我们得出的结论是,辐射冷却和磁场的综合效应取决于场取向,但不可能提高云寿命超出辐射冷却的影响。
Motivated by observations of outflowing galaxies, we investigate the combined impact of magnetic fields and radiative cooling on the evolution of cold clouds embedded in a hot wind. We perform a collection of three-dimensional adaptive mesh refinement, magnetohydrodynamical simulations that span two resolutions, and include fields that are aligned and transverse to the oncoming, super-Alfvénic material. Aligned fields have little impact on the overall lifetime of the clouds over the non-magnetized case, although they do increase the mixing between the wind and cloud material by a factor of $\approx 3.$ Transverse fields lead to magnetic draping, which isolates the clouds, but they also squeeze material in the direction perpendicular to the field lines, which leads to rapid mass loss. A resolution study suggests that the magnetized simulations have somewhat better convergence properties than non-magnetized simulations, and that a resolution of 64 zones per cloud radius is sufficient to accurately describe these interactions. We conclude that the combined effects of radiative cooling and magnetic fields are dependent on field orientation, but are unlikely to enhance cloud lifetimes beyond the effect of radiative cooling alone.