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Abstract

In this paper, we study the temperature evolution of the Friedmann–Robertson–Walker (FRW) Universe filled with viscous generalised Chaplygin gas (VGCG) as a model of dark energy. We started the thermodynamical treatment of the VGCG, which is given by the equation of state  with bulk viscosity in the framework of the Eckart theory. We investigated it in the cosmological model using the FRW metric in flat space–time, and we were able to determine its temperature as a function of redshift z. Besides, the expression for the fluid’s temperature in terms of redshift and the viscosity parameter  is derived. In our computation, we assumed that the value of the parameter  would be 0.7 and that the current value of the temperature of the microwave background radiation would be given by  K. Using the decoupling redshift value  and the viscous parameter, the decoupling temperature is computed. The optimum choices for the remaining parameters are , yielding a decoupling temperature of  K and a redshift of . We also compute the decoupling temperature in this model at  and  K. In terms of z and , we also examined other parameters, such as the Hubble parameter, the equation of state parameter, the adiabatic speed of sound, jerk, snap and Om diagnostic parameters. These values are then compared with the outcomes of earlier research on modified Chaplygin gas (MCG) and other Chaplygin gas. We have shown that this model is thermodynamically stable for  in the FRW Universe and studied the validity of the generalised second law of thermodynamics on the apparent and event horizons of the Universe in the FRW Universe dominated by various Chaplygin gas fluids. However, a perfect fluid with  would produce an acceleration phase but might not produce a feasible dark energy epoch in the early and late stages of the Universe that is consistent with the observational data.

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Acknowledgements

The author would like to thank the Vice-Chancellor of Alipurduar University for the necessary research facilities to initiate the work.

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Correspondence to Abhinath Barman.

Appendix

Appendix

The expression of redshift in the dust phase  can be written as

(48)

The expression of redshift in the transition of the expansion of the Universe from deceleration to acceleration (i.e.,  ) can be written as

(49)

The jerk parameter j(t), related to the third-order time derivative of the scale factor a(t), is defined as

(50)

which may be expressed in terms of redshift and Hubble parameter as

(51)

The snap parameter s is related to the fourth-order time derivative of scale factor a(t) as

(52)

which is related to j and q by the relation

(53)

The Om diagnostic is defined in terms of redshift and Hubble parameter as

(54)

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Barman, A. Temperature evolution of the FRW Universe in the viscous generalised Chaplygin gas model. Pramana – J Phys 99, 100 (2025). https://doi.org/10.1007/s12043-025-02959-8

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  • Accepted 
  • Published 
  • DOI  https://doi.org/10.1007/s12043-025-02959-8

Keywords

  • Cosmology
  • Chaplygin gas
  • bulk viscosity
  • thermodynamics
  • dark matter and dark energy

PACS Nos.

  • 95.35.+d
  • 98.80.−k
  • 98.80.Es
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