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Dark Matters on the Scale of Galaxies

机译:黑暗事项在星系的规模上

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The cold dark-matter model successfully explains both the emergence and evolution of cosmic structures on large scales and, when we include a cosmological constant, the properties of the homogeneous and isotropic Universe. However, the cold dark-matter model faces persistent challenges on the scales of galaxies. Indeed, N-body simulations predict some galaxy properties that are at odds with the observations. These discrepancies are primarily related to the dark-matter distribution in the innermost regions of the halos of galaxies and to the dynamical properties of dwarf galaxies. They may have three different origins: (1) the baryonic physics affecting galaxy formation is still poorly understood and it is thus not properly included in the model; (2) the actual properties of dark matter differs from those of the conventional cold dark matter; (3) the theory of gravity departs from General Relativity. Solving these discrepancies is a rapidly evolving research field. We illustrate some of the solutions proposed within the cold dark-matter model, and solutions when including warm dark matter, self-interacting dark matter, axion-like particles, or fuzzy dark matter. We also illustrate some modifications of the theory of gravity: Modified Newtonian Dynamics (MOND), MOdified Gravity (MOG), and f ( R ) gravity.
机译:寒冷的暗物质模型成功地解释了大规模宇宙结构的出现和演化,并且当我们包括宇宙常数,均匀和各向同性宇宙的性质。然而,寒冷的黑暗物质模型面临在星系的鳞片上的持续挑战。实际上,N-obil模拟预测了与观察结果有所不同的一些星系属性。这些差异主要与星系晕晕的最内部区域和矮星系的动力学特性有关。它们可能有三种不同的起源:(1)影响星系形成的齐静理物理仍然很清楚,因此它不适当地包括在模型中; (2)暗物质的实际特性与传统冷暗暗物质的实际性质不同; (3)重力偏离一般相对论。解决这些差异是一种快速发展的研究领域。我们说明了在冷暗质型模型中提出的一些解决方案,以及当包括温暖的暗物质,自相互作用的暗物质,轴状颗粒或模糊暗物质时的解决方案。我们还说明了重力理论的一些修改:改进的牛顿动力学(MOND),改进的重力(MOG)和F(R)重力。

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