论文标题
伪造性窗口大小的依赖性在具有系统尺寸和光束能量的高能量碰撞中的多样性波动的依赖性
Pseudorapidity Window Size Dependence of Multiplicity Fluctuations in High-Energy Collisions with System Size and Beam Energies
论文作者
论文摘要
通过在高能碰撞实验中测得的事件(EBE)基础上,通过分析可观察到的波动可观察到的波动可观察到,对强烈相互作用QCD问题的临界行为进行了研究。波动分析是使用在不同目标大小和不同碰撞束能量下的核相互作用进行的,这是伪造间隔的宽度的函数。为了进行比较,在基于隆德蒙特卡洛模型的框架内研究了Hadronic和重型离子碰撞(P-H,P-A和A-B)中逐个事件的多样性波动。估计涉及不同目标大小和束矩的相互作用的带电粒子多样性和多重性分布的方差,即p-h,p-cno,p-agbr在200a gev/c/c/c和$^{16} $ o-o-agbr碰撞,在14.6、60、60和200a gev/c/c。此外,多重波动是根据密集量,缩放差异$ω$和强度强度$σ_{fb} $量化的。强烈密集的数量$σ_{fb} $是提取有关短期和长期多重性相关性的信息的重要性。此外,已经在基于隆德蒙特卡洛的Fritiof模型的框架中检查了多样性波动的碰撞中心性和中心箱宽度依赖性行为。基于本研究中进行的波动分析的结果是根据碰撞过程的动力学和相关QCD相变的可能性来解释的。
An investigation of the critical behavior of strongly interacting QCD matter has been performed by analyzing fluctuation observables on event-by-event (ebe) basis measured in high-energy collision experiments. The fluctuation analysis is performed using nuclear interactions at different target sizes and at different colliding beam energies as a function of varying width of pseudorapidity interval. For the sake of comparison, event-by-event multiplicity fluctuations in hadronic and heavy-ion collisions (p-H, p-A and A-B) are studied within the framework of the Lund Monte Carlo based FRITIOF model. Charged particle multiplicity and the variance of the multiplicity distribution are estimated for the interactions involving different target sizes and beam momenta i.e., p-H, p-CNO, p-AgBr at 200A GeV/c and $^{16}$O-AgBr collisions at 14.6, 60 and 200A GeV/c. Further, multiplicity fluctuations are quantified in terms of intensive quantity, the scaled variances $ω$ and the strongly intensive quantity $Σ_{FB}$ derived from the charged particle multiplicity and the width of the multiplicity distribution. Strongly intensive quantity $Σ_{FB}$ is a quantity of great significance to extract information about short and long-range multiplicity correlations. Furthermore, the collision centrality and centrality bin width dependent behavior of the multiplicity fluctuation have been examined in the framework of Lund Monte Carlo based FRITIOF model. Results based on the fluctuation analysis carried out in the present study are interpreted in terms of dynamics of collision process and the possibility of related QCD phase transition.