paper

Dynamic Models for the Beginning, Hubble Law and the Future of the Universe Based on Strong Cosmological Principle and Yang-Mills Gravity

arXiv:2104.02183

Abstract

We discuss highly simplified dynamic models for the beginning, expansion and future of the universe based on the strong cosmological principle and Yang-Mills gravity in flat space-time. We derive a relativistic Okubo equation of motion for galaxies with a time-dependent effective metric tensor . The strong cosmological principle states that $G_{μν}(t)=\e_{μν} A^2(t)$ for . In a model (HHK) with Yang-Mills gravity in the super-macroscopic limit, one has , which leads to the initial mass run away velocity , associated with . Thus, the Okubo equation of motion for galaxies predicts a `detonation' at the beginning of the universe. The Okubo equation also implies , with zero redshift for the future of the universe. In addition, the Okubo equation leads to the usual Hubble's law , where in non-relativistic approximation. We also discuss a model with a strict Hubble linear relation for all time. This model gives a silent beginning of the universe: as ; and final radius final velocity, , as . In all models with the strong cosmological principle in flat space-time, Hubble's recession velocities are predicted to have a maximum, i.e., the speed of light, as measured in an inertial frame.

11 pages, 14th International Conf. on Gravitation, Astrophysics and Cosmology (ICGAC14)