卫星在成对光晕周围的不平衡和膨胀分布。1 .观测测量和与晕基模型的比较

Yanhan Guo, Qinglin Ma and Cheng Li
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摘要

我们研究了斯隆数字巡天(SDSS)中星系团内部和周围的卫星星系的角度分布,并通过构建与观测样本相同的选择效应的模拟星表,将结果与暗物质晕对中的卫星分布进行了比较。我们发现,在SDSS和模拟星表中,卫星的角度分布都呈现出明显的不平衡趋势,卫星优先位于两个中心星系之间。此外,还有一个显著的膨胀分布,其特征是,与垂直于两个中心的分布相比,沿连接两个中心的线的卫星浓度更高。随着对分离和光晕质量的增加,不平衡和鼓形分布增强。模拟目录成功地再现了所考虑的所有情况下的观测结果。我们发现卫星的不平衡和膨胀分布在很大程度上可以解释为重叠的两个随机选择的光晕在质量上与实际的光晕对匹配,以及它们周围的卫星分布,前提是考虑到光晕的方向和连接光晕对的线之间的对齐。这表明,卫星的角度分布是Λ冷暗物质宇宙中大规模结构形成和演化的自然结果,消除了引入其他物理起源的需要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Lopsided and Bulging Distribution of Satellites Around Paired Halos. I. Observational Measurements and Comparison with Halo-based Models
We investigate the angular distribution of satellite galaxies in and around pairs of galaxy groups in the Sloan Digital Sky Survey (SDSS) and compare the results with the satellite distribution in pairs of dark matter halos by constructing mock catalogs that account for the same selection effects as the observational sample. We find that the angular distribution of satellites in both SDSS and the mock catalog exhibits a pronounced tendency toward lopsidedness, with satellites preferentially located between the two central galaxies. Additionally, there is a significant bulging distribution characterized by a higher concentration of satellites along the line connecting the two centrals compared to those found perpendicular to it. The lopsided and bulging distributions strengthen as pair separation and halo mass increase. The mock catalog successfully reproduces the observational results across all cases considered. We find that the lopsided and bulging distribution of satellites can largely be explained by overlapping two randomly selected halos matched in mass to the actual halo pairs, along with their surrounding satellite distribution, provided that the alignment between the orientations of the halos and the line connecting the halo pairs is taken into account. This suggests that the angular distribution of satellites is a natural consequence of the formation and evolution of large-scale structure in a Λ cold dark matter universe, eliminating the need to introduce other physical origins.
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