基于卡尼达基斯对偶熵的宇宙视界的熵宇宙学

IF 0.7 4区 物理与天体物理 Q3 ASTRONOMY & ASTROPHYSICS
A. V. Kolesnichenko
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引用次数: 0

摘要

在熵宇宙学的框架内,考虑了描述宇宙演化的模型的几种变体,这些模型基于弗里德曼-罗伯逊-沃克(FRW)方程系统重构,并考虑了宇宙学视界上卡尼达克斯熵的新修正。修正是通过将Kaniadakis熵(其中所有状态具有相同概率)的对偶表达式中的Bekenstein-Hawking熵替换为与宇宙表面视界由于量子引力效应而发生的变换相关的Barrow熵来实现的。结果,基于基于模型的两个自由参数的包含附加力项的重构FRW方程,得到了宇宙加速膨胀的各种宇宙学情景:Kaniadakis熵的变形参数κ和Barrow熵的变形参数κ,前者负责考虑由于引力的长程性质而产生的时空特殊性,后者负责与引力-量子效应作用相关的宇宙视界表面的分形结构。两个自由参数的存在使我们能够在FRW方程中获得驱动力的新变体,这导致与“标准”贝肯斯坦-霍金全息模型的偏差,从而导致更准确地逼近现实。该方法不涉及假设暗能量的概念,并且基于反重力熵的使用,满足了宇宙动态演化热力学建模的已知要求。获得的结果表明,所提出的熵形式可以为更深入地了解时空的本质和宇宙视界的分形特性提供额外的机会。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Entropic Cosmology Based on Kaniadakis Dual Entropy on the Cosmological Horizon of the Universe

Within the framework of entropic cosmology, several variants of a model describing the evolution of the Universe are considered, based on the Friedmann–Robertson–Walker (FRW) system of equations reconstructed taking into account a new modification of the Kaniadakis entropy at the cosmological horizon. The modification is carried out by replacing the Bekenstein–Hawking entropy in the dual expression of the Kaniadakis entropy (in which all states have the same probability) by the Barrow entropy associated with the transformation of the horizon of the Universe surface due to quantum-gravitational effects. As a result, various cosmological scenarios of the accelerated expansion of the Universe on the basis of the reconstructed FRW equations containing an additional force term depending on two free parameters of the model are obtained: the deformation parameter κ of the Kaniadakis entropy, which is responsible for taking into account the peculiarities of space-time, due to the long-range nature of gravitation, and the deformation parameter κ of the Barrow entropy, which is responsible for the fractal structure of the cosmological horizon surface, associated with the action of gravitational-quantum effects. The presence of two free parameters allows us to obtain new variants of driving forces in the FRW equations, which cause a deviation from the “standard” Bekenstein–Hawking holographic model and thus lead to a more accurate approximation to reality. The proposed approach meets the known requirements for thermodynamic modeling of the dynamical evolution of the Universe without involving the concept of hypothetical dark energy and based on the use of anti-gravity entropic forces. The obtained results show that the proposed entropic formalism can open additional opportunities for deeper insight into the nature of space-time and fractal properties of the Universe horizon.

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来源期刊
Astronomy Reports
Astronomy Reports 地学天文-天文与天体物理
CiteScore
1.40
自引率
20.00%
发文量
57
审稿时长
6-12 weeks
期刊介绍: Astronomy Reports is an international peer reviewed journal that publishes original papers on astronomical topics, including theoretical and observational astrophysics, physics of the Sun, planetary astrophysics, radio astronomy, stellar astronomy, celestial mechanics, and astronomy methods and instrumentation.
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