盘状星系是自相似的:孤立盘的H -光晕质量比的普遍性

M. Korsaga, B. Famaey, J. Freundlich, L. Posti, R. Ibata, C. Boily, K. Kraljic, D. Esparza-Arredondo, C. R. Almeida, J. Koulidiati
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引用次数: 1

摘要

观测到的星系中重子与暗物质整体性质之间的尺度关系是揭示星系形成过程和暗物质本质的关键。本文研究了低红移孤立旋转支持盘状星系中中性氢(H i)与暗物质质量之间的标度关系。我们首先展示了最先进的星系形成模拟预测,对于大多数大质量盘状星系,H -与暗晕的质量比随着恒星质量的降低而降低。然后,我们从局部宇宙中孤立盘状星系的高质量旋转曲线数据推断暗物质晕质量,并报告这些观测到的星系的H -暗晕质量比的实际普遍性。这种比例关系适用于恒星质量范围为4个数量级,表面亮度范围为3个数量级的圆盘。考虑到我们观测拟合中旋转曲线形状的多样性,降低了H -暗晕质量比的散射,同时保持其恒定。这一发现将先前报道的星系形成模拟中大质量盘状星系的恒星与光晕质量关系的差异扩展到了中性原子气体的领域。我们的结果表明,具有规则旋转的扩展H盘的孤立星系惊人地自相似,直到高质量,这暗示了质量独立的自我调节机制尚未完全理解。
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Disk Galaxies Are Self-similar: The Universality of the H i-to-Halo Mass Ratio for Isolated Disks
Observed scaling relations in galaxies between baryons and dark matter global properties are key to shed light on the process of galaxy formation and on the nature of dark matter. Here, we study the scaling relation between the neutral hydrogen (H i) and dark matter mass in isolated rotationally supported disk galaxies at low redshift. We first show that state-of-the-art galaxy formation simulations predict that the H i-to-dark-halo mass ratio decreases with stellar mass for the most massive disk galaxies. We then infer dark matter halo masses from high-quality rotation curve data for isolated disk galaxies in the local Universe and report on the actual universality of the H i-to-dark halo mass ratio for these observed galaxies. This scaling relation holds for disks spanning a range of 4 orders of magnitude in stellar mass and 3 orders of magnitude in surface brightness. Accounting for the diversity of rotation curve shapes in our observational fits decreases the scatter of the H i-to-dark halo mass ratio while keeping it constant. This finding extends the previously reported discrepancy for the stellar-to-halo mass relation of massive disk galaxies within galaxy formation simulations to the realm of neutral atomic gas. Our result reveals that isolated galaxies with regularly rotating extended H i disks are surprisingly self-similar up to high masses, which hints at mass-independent self-regulation mechanisms that have yet to be fully understood.
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