论文标题
热力学的稳定性和p-V的非源性 - 黑孔的临界性,并带有弦云
Thermodynamic stability and P-V criticality of nonsingular-AdS black holes endowed with clouds of strings
论文作者
论文摘要
我们调查了非adds黑洞的扩展相空间热力学,最小化与弦线的云层,我们将宇宙学常数($λ$)视为黑洞的压力($ p $)及其共轭可变的热力学体积($ v $)。由于字符串参数的背景云($ a $),我们分析了固定参数$ k $的鹰温度,熵和特定的热量。我们发现字符串云背景不会改变小/大黑洞(SBH/LBH)相变,而是发生在较大的地平线半径上,并且两个二阶相变在较小的地平线半径上。实际上,$ g $ - $ t $图在临界压力下显示出燕尾,这意味着一阶相变于较低温度和较低的临界压力下的液态气相变。为了进一步研究非源性 - 黑洞和液态气体系统之间的类比,我们得出了确切的临界点并探测串线云对$ p-v $的影响,以发现等温线在$ \ tilde {t}} \,<\,<\ \ tilde plyde for $ \ tilde {我们还计算了与范德壁流体相同的临界指数,即与以前获得的其他广告黑洞之前获得的临界指数相同,这意味着字符串的背景云不会改变关键指数。
We investigate the extended phase space thermodynamics of nonsingular-AdS black holes minimally coupled to clouds of strings in which we consider the cosmological constant ($Λ$) as the pressure ($P$) of the black holes and its conjugate variable thermodynamical volume ($V$) of the black holes. Owing to the background clouds of strings parameter ($a$), we analyse the Hawking temperature, entropy and specific heat on horizon radius for fixed-parameter $k$. We find that the strings clouds background does not alter small/large black hole (SBH/LBH) phase transition but occurs at a larger horizon radius, and two second-order phase transitions occur at a smaller horizon radius. Indeed, the $G$--$T$ plots exhibit a swallowtail below the critical pressure, implying that the first-order phase transition is analogous to the liquid-gas phase transition at a lower temperature and lower critical pressure. To further examine the analogy between nonsingular-AdS black holes and a liquid-gas system, we derive the exact critical points and probe the effects of a cloud of strings on $P-V$ criticality to find that the isotherms undergo liquid-gas like phase transition for $\tilde{T}\,<\,\tilde{T}_c$ at lower $\tilde{T}_c$. We have also calculated the critical exponents identical with Van der Walls fluid, i.e., same as those obtained before for arbitrary other AdS black holes, which implies that the background clouds of strings do not change the critical exponents.