Scinovex
article Open AccessTop 10% cited

Unified first law of black-hole dynamics and relativistic thermodynamics

Classical and Quantum Gravity · 1998 · Vol. 15(10) · pp. 3147–3162
Sean A Hayward

Abstract

A unified first law of black-hole dynamics and relativistic thermodynamics is derived in spherically symmetric general relativity. This equation expresses the gradient of the active gravitational energy E according to the Einstein equation, divided into energy-supply and work terms. Projecting the equation along the flow of thermodynamic matter and along the trapping horizon of a blackhole yield, respectively, first laws of relativistic thermodynamics and black-hole dynamics. In the black-hole case, this first law has the same form as the first law of black-hole statics, with static perturbations replaced by the derivative along the horizon. There is the expected term involving the area and surface gravity, where the dynamic surface gravity is defined as in the static case but using the Kodama vector and trapping horizon. This surface gravity vanishes for degenerate trapping horizons and satisfies certain expected inequalities involving the area and energy. In the thermodynamic case, the quasi-local first law has the same form, apart from a relativistic factor, as the classical first law of thermodynamics, involving heat supply and hydrodynamic work, but with E replacing the internal energy. Expanding E in the Newtonian limit shows that it incorporates the Newtonian mass, kinetic energy, gravitational potential energy and thermal energy. There is also a weak type of unified zeroth law: a Gibbs-like definition of thermal equilibrium requires constancy of an effective temperature, generalising the Tolman condition and the particular case of Hawking radiation, while gravithermal equilibrium further requires constancy of surface gravity. Finally, it is suggested that the energy operator of spherically symmetric quantum gravity is determined by the Kodama vector, which encodes a dynamic time related to E.

Quantum Electrodynamics and Casimir EffectBlack Holes and Theoretical PhysicsNoncommutative and Quantum Gravity TheoriesZeroth law of thermodynamicsNewtonian limitGravitationThermal equilibriumFirst law of thermodynamicsApparent horizonDegenerate energy levelsBlack hole thermodynamicsGeneral relativityNon-equilibrium thermodynamics
Citations
573
FWCI
3.63
field-weighted impact
References
13
Percentile
93%
vs. same field & year
Citations per year
Cited by
Black hole chemistry: thermodynamics with Lambda
Classical and Quantum Gravity · 2017 · 820 citations
Thermodynamics in<i>f</i>(<i>R</i>,<i>T</i>) theory of gravity
Journal of Cosmology and Astroparticle Physics · 2012 · 335 citations
References
Black hole entropy is the Noether charge
Physical review. D. Particles, fields, gravitation, and cosmology/Physical review. D. Particles and fields · 1993 · 2,322 citations
Citation Network

How this paper connects to the literature. Drag to explore, click any node to open that paper.

Unified first law of black-hole dynamics and relativistic thermodynamics · Scinovex