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The mechanical first law of black hole spacetimes with a cosmological constant and its application to the Schwarzschild-de Sitter spacetime

机译:具有宇宙学常数的黑洞时空的机械第一定律及其在施瓦茨希尔德·希特时空中的应用

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The mechanical first law (MFL) of black hole spacetimes is a geometrical relation which relates variations of the mass parameter and horizon area. While it is well known that the MFL of an asymptotic flat black hole is equivalent to its thermodynamical first law, however we do not know the detail of the MFL of black hole spacetimes with a cosmological constant which possess a black hole and cosmological event horizons. This paper aims to formulate an MFL of the two-horizon spacetimes. For this purpose, we try to include the effects of two horizons in the MFL. To do so, we make use of the Iyer-Wald formalism and extend it to regard the mass parameter and the cosmological constant as two independent variables which make it possible to treat the two horizons on the same footing. Our extended Iyer-Wald formalism preserves the existence of the conserved Noether current and its associated Noether charge, and gives an abstract form of the MFL of black hole spacetimes with a cosmological constant. Then, as a representative application of this formalism, we derive the MFL of the Schwarzschild-de Sitter (SdS) spacetime. Our MFL of the SdS spacetime relates the variations of three quantities: the mass parameter, the total area of the two horizons and the volume enclosed by the two horizons. If our MFL is regarded as a thermodynamical first law of the SdS spacetime, it offers a thermodynamically consistent description of the SdS black hole evaporation process: the mass decreases while the volume and the entropy increase. In our suggestion, a generalized second law is not needed to ensure the second law of SdS thermodynamics for its evaporation process.
机译:黑洞时空的机械第一定律(MFL)是一个几何关系,它关系到质量参数和视界面积的变化。众所周知,渐近平黑洞的MFL等于其热力学第一定律,但是我们不知道具有宇宙常数的宇宙黑洞时空MFL的细节,该常数具有黑洞和宇宙事件视界。本文旨在制定两水平时空的MFL。为此,我们尝试在MFL中纳入两个视野的影响。为此,我们利用Iyer-Wald形式主义并将其扩展为将质量参数和宇宙常数视为两个独立变量,这使得可以在同一基础上处理两个层。我们扩展的Iyer-Wald形式主义保留了守恒Noether电流及其相关的Noether电荷的存在,并给出了具有宇宙学常数的黑洞时空MFL的抽象形式。然后,作为这种形式主义的代表应用,我们得出了施瓦茨希尔德·德·西特(SdS)时空的MFL。我们的SdS时空MFL涉及三个量的变化:质量参数,两个视界的总面积以及两个视界所包围的体积。如果将我们的MFL视为SdS时空的热力学第一定律,则它提供了SdS黑洞蒸发过程的热力学一致描述:质量减少,而体积和熵增加。在我们的建议中,不需要通用的第二定律来确保SdS热力学第二定律用于其蒸发过程。

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