Solid-liquid phase transition and heat engine in an asymptotically flat Schwarzschild black hole via the Rényi extended phase space approach

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Author listPromsiri C., Hirunsirisawat E., Liewrian W.

PublisherAmerican Physical Society

Publication year2021

JournalPhysical Review D (particles, fields, gravitation, and cosmology) (2470-0010)

Volume number104

Issue number6

ISSN2470-0010

eISSN2470-0029

URLhttps://www.scopus.com/inward/record.uri?eid=2-s2.0-85114443341&doi=10.1103%2fPhysRevD.104.064004&partnerID=40&md5=46385bc3389fc487da03b256153d7c76

LanguagesEnglish-Great Britain (EN-GB)


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Abstract

Recently, it has been found that, with the Rényi statistics, the asymptotically flat Schwarzschild black hole can be in thermal equilibrium with infinite heat reservoir at a fixed temperature when its event horizon radius is larger than the characteristic length scale Lλ=1/πλ, where λ is the nonextensivity parameter. In the Rényi extended phase space with the PdV work term, an off shell free energy in the canonical ensemble with the thermodynamic volume as an order parameter is considered to identify a first-order Hawking-Page (HP) phase transition as a solid-liquid phase transition. It has the latent heat of fusion from solid (corresponding to thermal radiation) to liquid (corresponding to black hole) in the form of ∼1/λ; this is evident in the absence of the HP phase transition in the case of an asymptotically flat Schwarzschild black hole from the Gibbs-Boltzmann statistics (λ=0). Moreover, we investigate the generalized second law of black hole thermodynamics (GSL) in Rényi statistics by considering the black hole as a working substance in a heat engine. Interestingly, an efficiency η of the black hole in a Carnot cycle takes the form ηc=1-TC/TH. This confirms the validity of the GSL in the Rényi extended phase space. © 2021 authors. Published by the American Physical Society.


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Last updated on 2023-26-09 at 07:43