论文标题

动力损失形式主义:从描述抑制模式到对未来实验的影响

Dynamical energy loss formalism: from describing suppression patterns to implications for future experiments

论文作者

Djordjevic, Magdalena, Zigic, Dusan, Blagojevic, Bojana, Auvinen, Jussi, Salom, Igor, Djordjevic, Marko

论文摘要

了解夸克 - 杜伦等离子体的特性需要对实验数据与理论预测进行公正的比较。为此,我们开发了动态能量损失形式主义,该形式与大多数其他方法区别在一起,考虑了由动态散射中心组成的逼真的介质。形式主义还允许对固定在标准文献值的相同参数集的广泛观察值进行数值预测。在此程序中,我们概述了最近开发的Dreena-C和Dreena-B框架,其中Dreena是动态能量损失形式主义的计算实施,其中C代表恒定的温度QCD介质,而B代表由1+1d Bjorken扩展建模的介质。在恒定温度下,我们的预测高估了$ v_2 $,与其他模型相反,但与简单的分析估计值一致。随着Bjorken扩展,我们对预测有很好的共识,同时$ r_ {aa} $和$ v_2 $测量。我们发现,引入媒体进化对$ v_2 $预测有更大的影响,但是为了精确预测,它也必须在$ r_ {aa} $预测中考虑到。基于数值计算和简单的分析推导,我们还提出了一个新的可观察到的可观察到的,我们称之为路径长度敏感抑制比例,我们认为可以直接评估路径长度依赖性。我们还认为,$ pb+pb $ vs. $ xe+xe $ $测量是一个很好的系统来评估路径长度依赖性。作为一种前景,我们希望在动态能量损失形式主义中引入更复杂的培养基进化(超越Bjorken扩展)可以为最先进的QGP层析成像工具的状态提供基础 - 例如从高PT和低PT数据的点共同约束培养基。

Understanding properties of Quark-Gluon Plasma requires an unbiased comparison of experimental data with theoretical predictions. To that end, we developed the dynamical energy loss formalism which, in distinction to most other methods, takes into account a realistic medium composed of dynamical scattering centers. The formalism also allows making numerical predictions for a wide number of observables with the same parameter set fixed to standard literature values. In this proceedings, we overview our recently developed DREENA-C and DREENA-B frameworks, where DREENA is a computational implementation of the dynamical energy loss formalism, and where C stands for constant temperature QCD medium, while B stands for the medium modeled by 1+1D Bjorken expansion. At constant temperature our predictions overestimate $v_2$, in contrast to other models, but consistent with simple analytical estimates. With Bjorken expansion, we have a good agreement of the predictions with both $R_{AA}$ and $v_2$ measurements. We find that introducing medium evolution has a larger effect on $v_2$ predictions, but for precision predictions it has to be taken into account in $R_{AA}$ predictions as well. Based on numerical calculations and simple analytical derivations, we also propose a new observable, which we call path length sensitive suppression ratio, for which we argue that the path length dependence can be assessed in a straightforward manner. We also argue that $Pb+Pb$ vs. $Xe+Xe$ measurements make a good system to assess the path length dependence. As an outlook, we expect that introduction of more complex medium evolution (beyond Bjorken expansion) in the dynamical energy loss formalism can provide a basis for a state of the art QGP tomography tool - e.g. to jointly constrain the medium properties from the point of both high pt and low pt data.

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