ANALYTICAL EVALUATION OF THE NUMERICAL VALUES OF THE HUBBLE CONSTANT AND MAIN SPATIAL-ENERGY CHARACTERISTICS OF THE OBSERVABLE UNIVERSE

V. Timkov, S. Timkov, V. Zhukov, K. Afanasiev, Спостережуваного Тімков
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Abstract

Since the baryonic matter of the observable Universe consists mainly of protons and neutrons, then the numerical value of its mass can be represented and calculated on the basis of an additive-multiplicative golden algebraic fractal, based on golden algebraic fractals of the masse of proton, neutron, and muon. Based on an analytical estimate of the mass of the observable Universe, using the law “Planck’s Universal Proportions”, an analytical estimate of the Hubble constant and the main spatial-energy characteristics of the observed Universe is obtained. An analytical estimate of the Hubble constant is consistent with the experimental data of Planck’s mission, SDSS-III Baryon Oscillation Spectroscopic Survey, DES Collaboration. The objectivity of the experimental estimation of the Hubble constant from the H0LiCOW, Riess et al, Hubble Space Telescope collaborations does not raise any doubts. This means that the Hubble constant describes two similar, but different physical processes and has at least two values. The value of the Hubble constant from the collaborations Planck’s mission, SDSS-III Baryon Oscillation Spectroscopic Survey, DES Collaboration describes the process of rotation of the space of the observed Universe, and the value of the Hubble constant from the collaborations H0LiCOW, Riess et al, Hubble Space Telescope describes the process of rotation of substance in the space of the observed Universe. It is shown that after the Big Bang, the space of the observable Universe made one incomplete revolution of at 345 degrees, and the substance in it made one complete revolution of approximately 379 degrees. New estimates are given: of the gravitational constant, of the Planck energy, of the Planck acceleration, of the Planck force, of the gravity factor of the observable Universe, of the Planck temperature, of the angular velocity of rotation of the space of the observable Universe. Estimates of temperature and wavelength of thermal radiation of the observable Universe, as the Hubble sphere, are given.
哈勃常数数值和可观测宇宙主要空间能量特征的分析评价
由于可观测宇宙中的重子物质主要由质子和中子组成,因此其质量的数值可以在质子、中子和介子质量的金代数分形的基础上用加乘金代数分形来表示和计算。在对可观测宇宙质量的解析估计的基础上,利用“普朗克宇宙比例”定律,对哈勃常数和可观测宇宙的主要空间能量特征进行了解析估计。哈勃常数的分析估计与普朗克任务的实验数据一致,SDSS-III重子振荡光谱调查,DES合作。从hollicow, Riess等人,哈勃太空望远镜合作中对哈勃常数的实验估计的客观性没有引起任何怀疑。这意味着哈勃常数描述了两个相似但不同的物理过程,并且至少有两个值。哈勃常数的值来自于合作项目Planck的任务,SDSS-III重子振荡光谱调查,DES合作项目,描述了被观测宇宙空间的旋转过程,哈勃常数的值来自于合作项目hollicow, Riess等,哈勃太空望远镜描述了被观测宇宙空间中物质的旋转过程。据证明,在大爆炸之后,可观测宇宙的空间在345度处作了一次不完全旋转,而其中的物质作了一次大约379度的完全旋转。给出了新的估计:引力常数、普朗克能量、普朗克加速度、普朗克力、可观测宇宙的引力因子、普朗克温度、可观测宇宙空间的旋转角速度。给出了可观测宇宙(如哈勃球)的温度和热辐射波长的估计。
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