论文标题

在强烈离子反应中,全球角动量产生

Global angular momentum generation in heavy-ion reactions within a hadronic transport approach

论文作者

Sass, Nils, Müller, Marco, Garcia-Montero, Oscar, Elfner, Hannah

论文摘要

2017年,通过自旋极化测量$λ$ hyperons,在相对论重离子对撞机(RHIC)(RHIC)的Star合作在重离子碰撞中测量了有限的全球角动量。该测量结果表明,重离子的高角度动量,并首次提供了夸克 - 杜伦等离子体(QGP)涡度的实验证据。为了研究潜在机制,需要对角动量转移的动态描述。在这项工作中,通过两个核的相互作用,应用了微观的非平衡传输方法Smash(模拟许多加速强化的Hadron)来研究全局角动量的产生。由于Smash在任何给定时间都可以访问每个粒子的整个相空间演变,因此它允许评估所有参与者在火球中产生的角动量的比例。我们在几何Glauber模型方法中通过Becattini \ textit {et al}确认了先前的建模,该方法发现,在时间演化期间,角动量传递在中央碰撞中达到了独特的最大值。从$ \ sqrt {s _ {\ rm nn}} = 2.41-200 $ GEV的所有光束能量的相应影响参数约为$ b = 4-6 $ fm。尽管在先验的运输方法中,角动量并不在本地保守,但我们根据测试粒子方法和费米运动的处理,确定了对侵犯保护的贡献,并提出了针对不同能量制度的最佳设置。此外,研究了系统的大小和中心性依赖性。

In 2017, the STAR collaboration at the Relativistic Heavy Ion Collider (RHIC) has measured finite global angular momentum in heavy-ion collisions through a spin polarization measurement of $Λ$ hyperons. This measurement revealed a high angular momentum of the heavy ions and provided experimental evidence for vorticity in the quark-gluon plasma (QGP) for the first time. In order to investigate the underlying mechanisms, a dynamic description of the transfer of angular momentum is required. In this work, the microscopic non-equilibrium transport approach SMASH (Simulating Many Accelerated Strongly-interacting Hadrons) is applied to study the generation of global angular momentum by the interaction of two nuclei. As SMASH provides access to the whole phase-space evolution of every particle at any given time, it allows to assess the fraction of angular momentum generated in the fireball by all participants. We confirm the previous modeling by Becattini \textit{et al} within a geometric Glauber model approach, which found that the angular momentum transfer reaches a unique maximum in mid-central collisions during time evolution. The corresponding impact parameter is around $b=4-6$ fm for all beam energies from $\sqrt{s_{\rm NN}}=2.41-200$ GeV. Even though angular momentum is not conserved locally in the transport approach a priori, we identify the contributions to the conservation violation and propose optimal setups for different energy regimes that recover conservation, based upon the test particle method and the treatment of Fermi motion. Furthermore, the system size and centrality dependence are investigated.

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