Hawking--Page phase transitions of the black holes in a cavity
arXiv:2012.13921 · doi:10.1140/epjp/s13360-021-01917-8
Abstract
The Hawking--Page phase transitions of the Schwarzschild and charged black holes are investigated in an extended phase space, in which the black holes are enclosed in a spherical cavity of radius in asymptotically flat space. An effective thermodynamic volume is introduced for the black hole, and an effective pressure is defined as the conjugate variable of . The phase transition temperature and the Gibbs free energy are systematically studied in a grand canonical ensemble with fixed electric potential , and is found to increase with and decrease with . If the phase transition occurs, must have an upper bound, such that the cavity radius is always larger than the black hole horizon radius. These phase transition behaviors are further compared to those in the anti-de Sitter space, and the remarkable similarities and notable differences are also discussed in depth. Our work reveals the relationship of the thermodynamic properties of black holes and their specific boundary conditions in different extended phase spaces.
20 pages, 5 figures
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Cited by in corpus (7)
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- Kinetics of Hawking-Page phase transition with the non-Markovian effects
- The Hawking-Page-like Phase Transition from FRW Spacetime to McVittie Black Hole
- Black Holes in a Cavity: Heat engine and Joule-Thomson Expansion
- Quantum corrections to the thermodynamics and phase transition of a black hole surrounded by a cavity in the extended phase space
- Hawking-Page Phase Transition of the four-dimensional de-Sitter Spacetime with non-linear source
- The Joule--Thomson and Joule--Thomson-like effects of the black holes in a cavity