论文标题
轻锥模拟暗物质光环对环境的动力学特性的依赖性
Dependence of the dynamical properties of light-cone simulation dark matter halos on their environment
论文作者
论文摘要
目的:我们研究了暗物质光环的动力学特性对其环境的依赖性,以全套$λ$ CDM轻孔模拟扩展到$ z \ sim 0.65 $。感兴趣的特性是光环形状(通过其主轴参数),自旋和病毒化状态,光环自旋和形状的比对,以及光环邻居之间的形状形状和自旋旋转比对。方法:我们使用由距离其最近邻居的距离确定的光环隔离状态的概念来定义光环环境。这定义了每个光晕周围没有其他光晕的最大球形区域,而没有其他光环。我们认为是“关闭光环对”,对比特定阈值低的距离分开。为了使我们的结果从halo动力学对质量的已知依赖性取代,我们使用随机采样程序来比较类似的晕光丰度分布的属性。结果:(a)我们发现光环特性对环境的强烈依赖性,证实了孤立的光环更加分类,并且更倾斜,并且自旋值较低。 (b)Halo属性之间存在相关性,并且主要与光晕环境无关。 (c)光环旋转与次要轴对齐,无论光环形状如何。 (d)紧密的光环邻居的主要轴统计地对齐,而对反行自旋方向的偏爱略有但具有统计学意义的偏好。在低密度环境中,近光对的情况下,后一个结果得到了增强。此外,我们发现自旋向量的偏好是垂直于连接这种近光环对的线的定向。
Aims: We study the dependence of the dynamical properties of dark matter halos on their environment in a whole-sky $Λ$CDM light-cone simulation extending to $z\sim 0.65$. The properties of interest are halo shape (parametrized by its principal axes), spin and virialisation status, the alignment of halo spin and shape, as well as the shape-shape and spin-spin alignments among halo neighbours. Methods: We define the halo environment using the notion of halo isolation status determined by the distance to its nearest neighbor. This defines a maximum spherical region around each halo devoid of other halos, above the catalog threshold mass. We consider as 'close halo pairs', the pairs that are separated by a distance lower than a specific threshold. In order to decontaminate our results from the known dependence of halo dynamical properties on mass, we use a random sampling procedure in order to compare properties of similar halo abundance distributions. Results: (a) We find a strong dependence of halo properties on their environment, confirming that isolated halos are more aspherical and more prolate with lower spin values. (b) Correlations between halo properties exist and are mostly independent of halo environment. (c) Halo spins are aligned with the minor axis, regardless of halo shape. (d) Close halo neighbors have their major axes statistically aligned, while they show a slight but statistically significant preference for anti-parallel spin directions. The latter result is enhanced for the case of close halo pairs in low-density environments. Furthermore, we find a preference of the spin vectors to be oriented perpendicular to the line connecting such close halo pairs.