论文标题
为什么宇宙空隙很重要:非线性结构和线性动力学
Why Cosmic Voids Matter: Nonlinear Structure & Linear Dynamics
论文作者
论文摘要
我们使用最先进的流体动力学模拟的磁性套件来鉴定基于流域技术的宇宙空隙,并研究其在不同分辨率的质量和尺度上最基本的特性。这涵盖了空隙,形状和内容的分布,以及它们的径向密度和速度曲线,通过冷暗物质颗粒和光晕的分布所追踪。我们还研究了各种示踪剂特性的影响,例如它们的稀疏性和质量,以及空隙合并对这些摘要统计数据的影响。我们的结果表明,所有分析的空隙特性在物理上彼此相关,并描述了主要独立于示踪剂类型和分辨率的普遍特征。最值得注意的是,我们发现,示踪剂在空隙中心周围的运动与单个的线性动力学以及堆叠的空隙完全一致。尽管在我们的模拟中可以访问大量的尺度,但我们甚至无法在大小上只有几个MPC的空隙内识别非线性动力学的发生。这表明空隙是最原始的宇宙学探针之一,直到通常被称为大型结构领域的高度非线性的量表。
We use the Magneticum suite of state-of-the-art hydrodynamical simulations to identify cosmic voids based on the watershed technique and investigate their most fundamental properties across different resolutions in mass and scale. This encompasses the distributions of void sizes, shapes, and content, as well as their radial density and velocity profiles traced by the distribution of cold dark matter particles and halos. We also study the impact of various tracer properties, such as their sparsity and mass, and the influence of void merging on these summary statistics. Our results reveal that all of the analyzed void properties are physically related to each other and describe universal characteristics that are largely independent of tracer type and resolution. Most notably, we find that the motion of tracers around void centers is perfectly consistent with linear dynamics, both for individual, as well as stacked voids. Despite the large range of scales accessible in our simulations, we are unable to identify the occurrence of nonlinear dynamics even inside voids of only a few Mpc in size. This suggests voids to be among the most pristine probes of cosmology down to scales that are commonly referred to as highly nonlinear in the field of large-scale structure.