论文标题
测试Reissner-Nordström-De Sitter的弱宇宙审查猜想,被完美的液体暗物质包围
Testing the weak cosmic censorship conjecture for a Reissner-Nordström-de Sitter black hole surrounded by perfect fluid dark matter
论文作者
论文摘要
在本文中,我们测试了Reissner-Nordström-De保姆(RN-DS)黑洞的弱宇宙审查制度猜想(WCCC),周围是完美的液体暗物质。我们通过应用新版本的Gedanken实验,从Sorce和Wald的工作中采用新版本的Gedanken实验,考虑了球形对称的扰动。与众所周知的结果相反:在线性阶粒子积聚下,Reissner-Nordström(RN)黑洞可能过多地充电,因此表明,与宇宙学参数的完美流体暗物质中的同一黑洞不能过多。考虑到一个现实的情况,在真空中不能认为黑洞是在真空中的,我们研究了暗物质和宇宙学常数在电气充满电的黑洞的过度充电过程中的贡献。我们证明,只有当两个通过暗物质和宇宙参数诱导的两个字段完全平衡时,黑洞才能过度充电。此外,我们给出了一个显着的结果,即黑洞不能超过一定阈值极限,而宇宙学常数产生的效果占据了完美的液体暗物质在效果上占主导地位。因此,即使对于线性积聚过程,黑洞也不能总是被过度充电,因此一般都要服从WCCC。对于非线性订单积聚,将继续实现此结果。
In this paper, we test the weak cosmic censorship conjecture (WCCC) for the Reissner-Nordström-de Sitter (RN-dS) black hole surrounded by perfect fluid dark matter. We consider a spherically symmetric perturbation on deriving linear and non-linear order perturbation inequalities by applying new version of gedanken experiments well accepted from the work of Sorce and Wald. Contrary to the well-known result that the Reissner-Nordström (RN) black hole could be overcharged under linear order particle accretion it is hereby shown that the same black hole in perfect fluid dark matter with cosmological parameter cannot be overcharged. Considering a realistic scenario in which black holes can not be considered to be in vacuum we investigate the contribution of dark matter and cosmological constant in the overcharging process of an electrically charged black hole. We demonstrate that the black hole can be overcharged only when two fields induced by dark matter and cosmological parameter are completely balanced. Further we give a remarkable result that black hole cannot be overcharged beyond a certain threshold limit for which the effect arising from the cosmological constant dominates over the effect by the perfect fluid dark matter. Thus even for linear accretion process, the black hole cannot always be overcharged and hence obeys the WCCC in general. This result would continues be fulfilled for non-linear order accretion.