论文标题
从超级统计框架内的热波动引起的QCD临界端点的体积影响
Volume effects on the QCD critical end point from thermal fluctuations within the super statistics framework
论文作者
论文摘要
我们研究了有限体积和热波动对QCD相图临界端点的影响。为此,我们使用伽玛,$ F $和对数正常分布及其与Tsallis非扩展热力学的关系实施了超级统计框架。我们计算有效的热力学潜力,这是反向温度波动的函数,并明确依赖系统体积。为了找到有效电位的分析表达,我们通过使用在与夸克的线性sigma模型中计算出的平衡热力学潜能扩展了修改的玻尔兹曼因子。我们发现,在消失的巴属化学电位下的伪关键温度通过系统的尺寸约为$ 7 \%$ $降低。此外,临界端点的密度较高,温度较低(两种情况下约为$ 12 \%$)。有趣的是,当模拟过平衡状况的参数被修改时,结果在定量上是相同的,表明手性对称性恢复在此近似中的热波动是可靠的。
We investigate the impact of the finite volume and the thermal fluctuations on the Critical End Point of the QCD phase diagram. To do so, we implement the super statistics framework with Gamma, $F$, and log-normal distributions and their relation with the Tsallis non-extensive thermodynamics. We compute an effective thermodynamic potential as a function of the inverse temperature fluctuations and explicit dependence on the system volume. To find an analytic expression for the effective potential, we expand the modified Boltzmann factor by using the equilibrium thermodynamic potential computed in the Linear Sigma Model coupled to quarks. We find that the pseudo-critical temperature of transition at vanishing baryon chemical potential is modified by the size of the system being about $7\%$ lower for small volumes. Additionally, the critical endpoint moves to higher densities and lower temperatures (about $12\%$ in both cases). Interestingly, the results are quantitatively the same when the parameter that models the out-of-equilibrium situation is modified, indicating that the chiral symmetry restoration is robust against the thermal fluctuations in this approximation.