论文标题

相对论锥体气中的玻色 - 恩德斯坦凝结和耗散动力学

Bose-Einstein Condensation and Dissipative Dynamics in a Relativistic Pion Gas

论文作者

Pradhan, Kshitish Kumar, Sahu, Dushmanta, Singh, Captain R., Sahoo, Raghunath

论文摘要

超相关碰撞中的pion凝结呈现出令人信服的理论现象,对辐射物质的动态产生了重要影响。各种理论框架可深入了解高温玻色网凝结(BEC)的性质。本研究调查了超相关的重型离子碰撞中的相对论性pion气体经历了bose-Einstein凝结(BEC)的耗散行为。此外,我们通过使用放松时间近似的Boltzmann传输方程来获得粘度($η$),散装粘度($ζ$)和声速($ C_S $)。调查结果显示,$η/s $和$ζ/s $的大幅下降,冷凝水的分数增加。在接近热力学极限的较大系统中,这种效果变得越来越明显。在粘度降低的同时,声音的速度也随着凝结的增加而降低,表明状态方程的软化。对有限尺寸效应的分析表明,较大的系统表现出更明显的BEC特征。这些结果表明,pion凝结会影响重离子碰撞中习惯阶段的流体动力进化,这对解释集体流动观测值和状态的基本方程式产生了影响。

Pion condensation in ultra-relativistic collisions presents a compelling theoretical phenomenon with significant implications for the dynamics of hadronic matter. Various theoretical frameworks offer insight into the nature of high-temperature Bose-Einstein condensation (BEC). The present study investigates the dissipative behavior of a relativistic pion gas undergoing Bose-Einstein condensation (BEC) in ultra-relativistic heavy-ion collisions. Further, we obtain viscosity ($η$), bulk viscosity ($ζ$), and speed of sound ($c_s$) by employing the Boltzmann transport equation with the relaxation time approximation. Findings show a substantial drop in $η/s$ and $ζ/s$ with the fractional increase in condensation. This effect is becoming more evident in larger systems approaching the thermodynamic limit. Alongside the reduction in viscosities, the speed of sound also decreases with increasing condensation, indicating a softening of the equation of state. The analysis of finite-size effects reveals that larger systems exhibit more pronounced signatures of BEC. These results suggest that pion condensation can influence the hydrodynamic evolution of the hadronic phase in heavy-ion collisions, with consequential implications for interpreting collective flow observables and the underlying equation of state.

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