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Misner-Sharp Mass and the Unified First Law in Massive Gravity

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arxiv 1502.00069 v2 pith:5MFRP2AJ submitted 2015-01-31 hep-th gr-qc

Misner-Sharp Mass and the Unified First Law in Massive Gravity

classification hep-th gr-qc
keywords gravitymassivemassmisner-sharpcaseconserveddimensionalfirst
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We obtain the Misner-Sharp mass in the massive gravity for a four dimensional spacetime with a two dimensional maximally symmetric subspace via the inverse unified first law method. Significantly, the stress energy is conserved in this case with a widely used reference metric. Based on this property we confirm the derived Misner-Sharp mass by the conserved charge method. We find that the existence of the Misner-sharp mass in this case does not lead to extra constraint for the massive gravity, which is notable in modified gravities. In addition, as a special case, we also investigate the Misner-Sharp mass in the static spacetime. Especially, we take the FRW universe into account for investigating the thermodynamics of the massive gravity. The result shows that the massive gravity can be in thermodynamic equilibrium, which fills in the gap in the previous studies of thermodynamics in the massive gravity.

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  1. Cosmological horizon thermodynamics in Gauss-Bonnet quasi-dilaton Massive Gravity

    gr-qc 2026-07 reject novelty 5.0

    Gauss-Bonnet quasi-dilaton massive gravity is claimed to obey horizon thermodynamics and the holographic entropy bound, provided the Gauss-Bonnet coupling is non-negative.