论文标题

重组和重组前原始培养基中的per脉的本本emmode分析

Eigenmode analysis of perurbations in the primordial medium at and before recombination

论文作者

Nelson, A. H.

论文摘要

宇宙微波背景的各向异性被认为是由于原始培养基的扰动而引起的,后者重组后导致星系簇和星系的形成。目的:我们在重组前后分析了原始介质的扰动波模式,包括完全离子的重骨等离子体,强烈的黑色体辐射场和冷暗物质。方法:我们使用了相对论方程的线性扰动理论,利用严格的热力学平衡模型将辐射能密度与等离子体温度相关联。结果:结果表明,对应于假定的巴属声波的波模式存在,相位速度接近光速,但是暗物质在这种模式下的参与非常小。取而代之的是,暗物质以重力崩溃的形式具有自身的主导模式,而重型等离子体几乎没有参与。结论:鉴于重生子与暗物质之间的这种非常弱的耦合,针对大规模结构和星系形成的计算机模拟所假定的最初条件,假设重组后,当星系形成开始时,巴里昂和暗物质密度扰动在空间上是在分数振幅中的空间偶然的。另外,在最后一个散射表面上,巴属和暗物质扰动的可能性可能对宇宙微波背景各向异性的分析产生影响。

Anisotropies of the cosmic microwave background are thought to be due to perturbations of the primordial medium, which, post recombination, lead to the formation of galaxy clusters and galaxies. Aims: We analyse the perturbation wave modes of the primordial medium at and before recombination, consisting of a fully ionized baryonic plasma, a strong black body radiation field, and cold dark matter. Methods: We use the linear perturbation theory of the relativistic equations of motion, utilising a strict thermodynamic equilibrium model that relates the radiation energy density to the plasma temperature. Results: It is shown that a wave mode corresponding to the postulated baryon acoustic waves exists with a phase velocity close to the speed of light, but the participation of the dark matter in this mode is very small. Instead, the dark matter has its own dominant mode in the form of gravitational collapse, with very little participation by the baryonic plasma. Conclusions: In view of this very weak coupling between baryons and dark matter, the initial conditions postulated for computer simulations of large-scale structure and galaxy formation, which assume that after recombination, when galaxy formation is getting underway, baryon and dark matter density perturbations are spatially coincident in terms of fractional amplitude, may be unjustified. In addition the possible non-coincidence of baryon and dark matter perturbations at the last scattering surface has implications for the analysis of cosmic microwave background anisotropies.

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