论文标题

相对论重离子碰撞最早的能量弹药张量

The energy-momentum tensor at the earliest stage of relativistic heavy ion collisions

论文作者

Carrington, Margaret E., Czajka, Alina, Mrowczynski, Stanislaw

论文摘要

高能量处的核冲突产生了一个Gluon场,可以使用彩色玻璃冷凝物(CGC)有效理论在适当时间$τ\ Lessim 1 $ fm/c进行描述。该理论可用于计算Gluon Energy-Momentum张量,该张量提供了有关染色体和铬磁场的早期演变的信息,能量密度,纵向和横向压力以及其他数量。我们在适当的时间内使用膨胀,并在第六阶工作来获得能量弹药张量的分析表达。该计算在技术上很困难,部分是因为涉及的术语数量随$τ$扩展的顺序迅速增长,而且还因为与事件平均相关器的定义相关的几个细微问题,选择这些相关器的方法以及对正则化和核密度谱介绍参数的依赖性的方法。所有这些问题都与我们期望CGC方法能够准确描述重离子碰撞的早期阶段的重要程度的重要问题至关重要。我们为能量密度以及纵向和横向压力的演变提供了一些结果。我们表明,我们的计算给出了具有物理意义的结果,达到了适当时间的值,该值接近初始化流体动力模拟的状态。在同伴论文[1]中,我们对可以从能量量张量计算的其他几个实验相关数量进行了详细分析。

Nuclear collisions at high energies produce a gluon field that can be described using the Colour Glass Condensate (CGC) effective theory at proper times $τ\lesssim 1$ fm/c. The theory can be used to calculate the gluon energy-momentum tensor, which provides information about the early time evolution of the chromo-electric and chromo-magnetic fields, energy density, longitudinal and transverse pressures, and other quantities. We obtain an analytic expression for the energy-momentum tensor using an expansion in the proper time, and working to sixth order. The calculation is technically difficult, in part because the number of terms involved grows rapidly with the order of the $τ$ expansion, but also because of several subtle issues related to the definition of event-averaged correlators, the method chosen to regulate these correlators, and the dependence of results on the parameters introduced by the regularization and nuclear density profile functions. All of these issues are crucially related to the important question of the extent to which we expect a CGC approach to be able to accurately describe the early stages of a heavy ion collision. We present some results for the evolution of the energy density and the longitudinal and transverse pressures. We show that our calculation gives physically meaningful results up to values of the proper time which are close to the regime at which hydrodynamic simulations are initialized. In a companion paper [1] we give a detailed analysis of several other experimentally relevant quantities that can be calculated from the energy-momentum tensor.

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