教授
招生学科专业:
物理学 -- 【招收博士、硕士研究生】 -- 物理学院
电子信息 -- 【招收博士、硕士研究生】 -- 物理学院
毕业院校:中国科学院理论物理研究所
学历:北京师范大学
学位:理学学士学位
所在单位:理学院
办公地点:理学院458
联系方式:025-52112069
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所属单位:理学院
发表刊物:PHYSICS LETTERS B
关键字:EINSTEIN-MAXWELL FLUID
摘要:It is well known that the black hole can have temperature and radiate the particles with black body spectrum, i.e. Hawking radiation. Therefore, if the black hole is surrounded by an isolated box, there is a thermal equilibrium between the black hole and radiation gas. A simple case considering the thermal equilibrium between the Schwarzschild black hole and radiation gas in an isolated box has been well investigated previously in detail, i.e. taking the conservation of energy and principle of maximal entropy for the isolated system into account. In this paper, following the above spirit, the effects of massive graviton on the thermal equilibrium will be investigated. For the gravity with massive graviton, we will use the de Rham-Gabadadze-Tolley (dRGT) massive gravity which has been proven to be ghost free. Because the graviton mass depends on two parameters in the dRGT massive gravity, here we just investigate two simple cases related to the two parameters, respectively. Our results show that in the first case the massive graviton can suppress or increase the condensation of black hole in the radiation gas although the T-Ediagram is similar as the Schwarzschild black hole case. For the second case, a new T-Ediagram has been obtained. Moreover, an interesting and important prediction is that the condensation of black hole just increases from the zero radius of horizon in this case, which is very different from the Schwarzschild black hole case. (C) 2017 The Author(s). Published by Elsevier B.V.
ISSN号:0370-2693
是否译文:否
发表时间:2017-09-10
合写作者:潘峰,Wu, Xin-Meng
通讯作者:胡亚鹏