论文标题
在有限温度和密度下基于晶状体QCD的状态方程
Lattice-QCD-based equations of state at finite temperature and density
论文作者
论文摘要
QCD的状态方程(EOS)是重型离子碰撞(HIC)和中子星级系统建模的关键输入。臭名昭著的费米标志问题阻碍了QCD的基本理论的计算,该理论可能会产生真正的EOS,该问题仅允许在零或虚构的男性化学势下进行直接模拟。直接结果,通过晶格模拟对QCD相图的当前覆盖范围有限。在这些程序中,讨论了基于第一原理QCD(LQCD)计算的两个不同状态方程。基本理论仅利用所有可用的对角线和非对角线敏感性来告知第一个,最高可达$ \ Mathcal {o}(μ_b^4)$,以便在有限的Baryon baryon数量,电荷和陌生化学势方面重建完整的EOS。在第二个方面,我们超越了晶格的信息,以探索尚未由LQCD方法确定的猜想相结构,以帮助实验性HIC社区寻找关键点。我们通过依靠QCD属于3D ISING模型的通用类别的原理来将批判行为纳入该EOS。这样一来,人们就可以研究奇异性对构成用于HIC流体动力学模拟状态的热力学量的影响。此外,我们确保这些EOSS通过执行陌生中性和固定电荷与巴里亚人比率的条件对HIC的应用有效。
The equation of state (EoS) of QCD is a crucial input for the modeling of heavy-ion-collision (HIC) and neutron-star-merger systems. Calculations of the fundamental theory of QCD, which could yield the true EoS, are hindered by the infamous Fermi sign problem which only allows direct simulations at zero or imaginary baryonic chemical potential. As a direct consequence, the current coverage of the QCD phase diagram by lattice simulations is limited. In these proceedings, two different equations of state based on first-principle lattice QCD (LQCD) calculations are discussed. The first is solely informed by the fundamental theory by utilizing all available diagonal and non-diagonal susceptibilities up to $\mathcal{O}(μ_B^4)$ in order to reconstruct a full EoS at finite baryon number, electric charge and strangeness chemical potentials. For the second, we go beyond information from the lattice in order to explore the conjectured phase structure, not yet determined by LQCD methods, to assist the experimental HIC community in their search for the critical point. We incorporate critical behavior into this EoS by relying on the principle of universality classes, of which QCD belongs to the 3D Ising Model. This allows one to study the effects of a singularity on the thermodynamical quantities that make up the equation of state used for hydrodynamical simulations of HICs. Additionally, we ensure that these EoSs are valid for applications to HICs by enforcing conditions of strangeness neutrality and fixed charge-to-baryon-number ratio.