作为演化宇宙发生器的引力真空级联弛豫

IF 1.4 4区 物理与天体物理 Q3 PHYSICS, MULTIDISCIPLINARY
V. N. Lukash, E. V. Mikheeva
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引用次数: 0

摘要

在膨胀的宇宙中,极化真空的级联弛豫是一个进化时代链,随着主导场(每个场在自己的时间内)从初始零状态出口到非零值,从早期宇宙中的主导标量场到随后的标量场,包括现代宇宙中的Λ-term,其密度下降。级联真空弛豫创造了整个可观测的宇宙学,从弗里德曼模型到原始黑洞可能产生的非幂律功率谱的度规的小扰动,以及广泛波数范围内的引力波,到暗物质和能量的形成,早期星系,超大质量黑洞和宇宙的大尺度结构。建立了一个早期宇宙级联真空弛豫的观测模型,该模型包含两个由观测数据确定的常数,并且不需要关于场势的信息。广义相对论真空吸引子的解已经得到,除了前面提到的两个常数外,还包括第三个常数(尚未受到观测的限制),它会导致小尺度上密度扰动的额外功率(k >;10mpc - 1)以“碰撞”的形式,双功率谱等。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cascade Relaxation of the Gravitating Vacuum as a Generator of the Evolving Universe

The cascade relaxation of a polarized vacuum in the expanding Universe is a chain of evolutionary epochs of decreasing its density with the exit of dominant fields (each in its own time) from the initial zero states to nonzero values, from the dominant scalar field in the early Universe to subsequent ones, including the Λ-term in the modern Universe. The cascade vacuum relaxation creates the entire observable cosmology from the Friedmann model with small perturbations of the metric with non-power-law power spectra from which primordial black holes could have arisen, and gravitational waves over a wide wavenumber range to the formation of dark matter and energy, early galaxies, supermassive black holes, and the large-scale structure of the Universe. An observational model of cascade vacuum relaxation in the early Universe has been constructed, which contains two constants determined by observational data and does not require information on the potential of the fields. A solution has been obtained for the general relativity vacuum attractor, including, in addition to the two previously mentioned constants, the third constant (not yet limited by observations), which leads to an additional power of density perturbations on a small scale (k > 10 Mpc–1) in the form of a “bump,” a two-power spectrum, etc.

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来源期刊
JETP Letters
JETP Letters 物理-物理:综合
CiteScore
2.40
自引率
30.80%
发文量
164
审稿时长
3-6 weeks
期刊介绍: All topics of experimental and theoretical physics including gravitation, field theory, elementary particles and nuclei, plasma, nonlinear phenomena, condensed matter, superconductivity, superfluidity, lasers, and surfaces.
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