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Review of Recent Results in Heavy Ion Fluid Dynamics

机译:重离子流体动力学的最新研究进展

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Fluid dynamical phenomena in high energy heavy ion reactions were predicted in the 1970s and still today these are the most dominant and basic observables. With increasing energy and the reach of QGP the low viscosity of the plasma became apparent and this brought a new revolution in the fluid dynamical studies. The high energy and low viscosity made it possible to observe fluctuations up to high multipolarity flow harmonics. This is an obvious, direct proof of the low viscosity of QGP. Many aspects of these fluctuations are under intensive study today. The low viscosity opened ways to observe special fluid dynamical turbulent phenomena. These may arise from random fluctuations, as well as from the global symmetries of peripheral collisions. At LHC energies the angular momentum of the participant matter can reach 106?, which leads to rotation and turbulent instabilities, like the Kelvin-Helmholtz instability. Low viscosity ensures that these remain observable at the final freeze-out stages of the collision. Thus new investigations in addition to the standard flow analysis methods became possible. Femtoscopy may also detect rotation and turbulence. Due to the high local thermal vorticity, particle polarization and orbital rotation may reach thermal and mechanical equilibrium. This leads to baryon polarization which, in given directions may be detectable.
机译:高能重离子反应中的流体动力学现象是在1970年代预测的,直到今天仍是最主要和最基本的可观察到的现象。随着能量的增加和QGP的应用,血浆的低粘度变得显而易见,这为流体动力学研究带来了新的革命。高能量和低粘度使得观察到高达多极性流动谐波的波动成为可能。这是QGP低粘度的明显直接证据。今天,这些波动的许多方面都在深入研究中。低粘度打开了观察特殊流体动力学湍流现象的途径。这些可能是由于随机波动以及外围碰撞的整体对称性引起的。在LHC能量下,参与物质的角动量可以达到106 ?,这导致旋转和湍流不稳定性,例如开尔文-亥姆霍兹不稳定性。低粘度确保在碰撞的最后冻结阶段仍可观察到这些。因此,除了标准流量分析方法外,新的研究成为可能。窥镜检查也可以检测旋转和湍流。由于高的局部热涡度,粒子极化和轨道旋转可能达到热和机械平衡。这导致重子极化,在给定方向上可以检测到。

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