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Subluminal Cosmology

Subluminal Cosmology
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摘要 The standard model of cosmology is considered critically. A model with pressure is proposed which is linearly expanding and which is an exact solution of Einstein’s field equations. The recession velocity of the galaxies of this model never exceeds the speed of light. The model is closely related to the Rh=ct model of Melia, which is flat and infinite. However, our subluminal model is spatially positively curved and closed. Nevertheless all data from observations gathered and surveyed by Melia support our model. The standard model of cosmology is considered critically. A model with pressure is proposed which is linearly expanding and which is an exact solution of Einstein’s field equations. The recession velocity of the galaxies of this model never exceeds the speed of light. The model is closely related to the Rh=ct model of Melia, which is flat and infinite. However, our subluminal model is spatially positively curved and closed. Nevertheless all data from observations gathered and surveyed by Melia support our model.
机构地区 Independent Researcher
出处 《Journal of Modern Physics》 2017年第4期583-601,共19页 现代物理(英文)
关键词 EXPANDING COSMOS with Pressure SUBLUMINAL EXPANSION COVARIANT Representation Expanding Cosmos with Pressure Subluminal Expansion Covariant Representation
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  • 1J. R. Oppenheimer and H. Snyder, On continued gravitational contraction, Phys. Rev. 56(5), 455 (1939).
  • 2G. C. McVittie, Gravitational collapse to a small volume, Astrophys. J. 140, 401 (1964).
  • 3C. W. Misner and D. H. Sharp, Relativistic equations for adiabatic, spherically symmetric gravitational collapse, Phys. Rev. 136(2B), B571 (1964).
  • 4I. H. Thompson and G. F. Whitrow, Time-dependent internal solutions for spherically symmetrical bodies in general relativity (I): Adiabatic collapse, Mon. Not. R. Astron. Soc. 136(2), 207 (1967).
  • 5G. Birkhoff, Relativity and Modern Physics, Harvard University Press, 1923.
  • 6H. P. Robertson, On the foundations of relativistic cosmology, Proc. Natl. Acad. Sci. USA 15(11), 822 (1929).
  • 7S. Weinberg, Gravitation and Cosmology: Principles and Applications of the General Theory of Relativity, Wiley, 1972.
  • 8F. Melia, The cosmic horizon, Mon. Not. R. Astron. Soc. 382(4), 1917 (2007).
  • 9D. H. Weinberg, M. J. Mortonson, D. J. Eisenstein, C. Hi-rata, A. G. Riess, and E. Rozo, Observational probes of cosmic acceleration, Phys. Rep. 530(2), 87 (2013).
  • 10S. Perlmutter, G. Aldering, G. Goldhaber, R. A. Knop, P. Nugent, P. G. Castro, S. Deustua, S. Fabbro, A. Goobar,D.E. Groom, I. M. Hook, A. G. Kim, M. Y. Kim, J. C. Lee, N. J. Nunes, R. Pain, C. R. Pennypacker, R. Quimby, C. Lidman, R. S. Ellis, M. Irwin, R. G. McMahon, P. Ruiz-Lapuente, N. Walton, B. Schaefer, B. J. Boyle, A. V. Filip-penko, T. Matheson, A. S. Fruchter, N. Panagia, H. J. M. Newberg, W. J. Couch, and T. S. C. Project, Measurements of W and L from 42 high-redshift supernovae, Astrophys. J. 517(2), 565 (1999).

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