引力与暗能量的界面

IF 3.6 3区 物理与天体物理 Q2 ASTRONOMY & ASTROPHYSICS Classical and Quantum Gravity Pub Date : 2024-06-30 DOI:10.1088/1361-6382/ad49ff
Kristen Lackeos and Richard Lieu
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引用次数: 0

摘要

在足够大的半径范围内,暗能量改变了(a)星系周围的约束轨道和(b)星系团中的病毒气体的行为。暗能量还为星系团的暗物质晕提供了一个自然的分界线。在(a)中,存在一个最大圆形轨道,超过这个轨道,周期性运动就不再可能,临界束缚附近的轨道演化可以通过绝热不变积分进行分析计算。这一发现与宽星系对的研究有关。在(b)中,暗能量要求使用广义的室温定理来描述星系团外围的气体。在暗能量的帮助下,当与重子逃逸条件相结合时,就会产生一个半径,超过这个半径,继续建立热化重子的静水晕是站不住脚的。这就产生了理论上的病毒半径。我们利用这一理论来探测星团重子晕的结构,并将其应用于在星团 Abell 1835 上收集到的 X 射线和弱透镜数据。我们发现,从 "内 "virial半径开始,其外围的气体明显偏离了流体静力学平衡。我们还为 A1835 定义了一个与模型相关的暗物质光环截止半径。暗物质截止半径给出了星团总质量的上限。 此外,给定暗物质截止半径,还可以推导出 "外部 "流体静力学平衡截止半径。在内侧和外侧截止半径之间有一个星团气体传输和湍流区域。
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The interface of gravity and dark energy
At sufficiently large radii dark energy modifies the behavior of (a) bound orbits around a galaxy and (b) virialized gas in a cluster of galaxies. Dark energy also provides a natural cutoff to a cluster’s dark matter halo. In (a) there exists a maximum circular orbit beyond which periodic motion is no longer possible, and orbital evolution near critical binding is analytically calculable using an adiabatic invariant integral. The finding implicates the study of wide galaxy pairs. In (b), dark energy necessitates the use of a generalized Virial Theorem to describe gas at the outskirts of a cluster. When coupled to the baryonic escape condition, aided by dark energy, the results is a radius beyond which the continued establishment of a hydrostatic halo of thermalized baryons is untenable. This leads to a theoretically motivated virial radius. We use this theory to probe the structure of a cluster’s baryonic halo and apply it to X-ray and weak-lensing data collected on cluster Abell 1835. We find that gas in its outskirts deviates significantly from hydrostatic equilibrium beginning at , the ‘inner’ virial radius. We also define a model dependent dark matter halo cutoff radius to A1835. The dark matter cutoff gives an upper limit to the cluster’s total mass of . Moreover, it is possible to derive an ‘outer’ hydrostatic equilibrium cutoff radius given a dark matter cutoff radius. A region of cluster gas transport and turbulence occurs between the inner and outer cutoff radii.
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来源期刊
Classical and Quantum Gravity
Classical and Quantum Gravity 物理-天文与天体物理
CiteScore
7.00
自引率
8.60%
发文量
301
审稿时长
2-4 weeks
期刊介绍: Classical and Quantum Gravity is an established journal for physicists, mathematicians and cosmologists in the fields of gravitation and the theory of spacetime. The journal is now the acknowledged world leader in classical relativity and all areas of quantum gravity.
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