Irreversible processes in inflationary cosmological models

G. M. Kremer and F. P. Devecchi
Phys. Rev. D 66, 063503 – Published 13 September 2002
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Abstract

By using the thermodynamic theory of irreversible processes and Einstein general relativity, a cosmological model is proposed where the early universe is considered as a mixture of a scalar field with a matter field. The scalar field refers to the inflaton while the matter field to the classical particles. The irreversibility is related to a particle production process at the expense of the gravitational energy and of the inflaton energy. The particle production process is represented by a nonequilibrium pressure in the energy-momentum tensor. The nonequilibrium pressure is proportional to the Hubble parameter and its proportionality factor is identified with the coefficient of bulk viscosity. The dynamic equations of the inflaton and the Einstein field equations determine the time evolution of the cosmic scale factor, the Hubble parameter, the acceleration and of the energy densities of the inflaton and matter. Among other results it is shown that in some regimes the acceleration is positive which simulates inflation. Moreover, the acceleration decreases and tends to zero in the instant of time where the energy density of matter attains its maximum value.

  • Received 10 July 2002

DOI:https://doi.org/10.1103/PhysRevD.66.063503

©2002 American Physical Society

Authors & Affiliations

G. M. Kremer* and F. P. Devecchi

  • Departamento de Física, Universidade Federal do Paraná Caixa Postal 19044, 81531-990, Curitiba, Brazil

  • *Email address: kremer@fisica.ufpr.br
  • Email address: devecchi@fisica.ufpr.br

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Issue

Vol. 66, Iss. 6 — 15 September 2002

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