大型强子对撞机能量下pp碰撞弦模型的多重涨落

IF 0.3 4区 物理与天体物理 Q4 PHYSICS, NUCLEAR
Svetlana Belokurova, Vladimir Vechernin
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引用次数: 0

摘要

研究了在给定的观测快速区间内带电粒子数的波动。在夸克-胶子弦模型框架下,利用解析表达式和蒙特卡罗模型计算了弦融合和不融合情况下多重度的尺度方差和鲁棒方差。所使用的主弦在横向平面上的分布与Regge方法一致。通过在冲击参数平面上实现晶格(网格)来考虑弦融合效应。在0.9、2.76和7 TeV三种初始能量下,计算了pp碰撞的尺度和鲁棒多重方差,结果表明,与不进行弦融合的结果相比,包含弦融合的结果更符合CERN ALICE合作的实验值。结果还表明,对于LHC能量下的pp碰撞,由于粒子之间存在短程关联,来自给定弦团的粒子数量波动显著超过泊松波动。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Multiplicity Fluctuations in the String Model in pp Collisions at LHC Energies

Multiplicity Fluctuations in the String Model in pp Collisions at LHC Energies

The fluctuation of the number of charged particles in a given rapidity interval of observation was studied. Analytical expressions and the Monte Carlo modelling in the framework of a quark–gluon string model were used to calculate scaled and robust variance of the multiplicity in the case with string fusion and without it. The used distribution of primary strings in the transverse plane is consistent with the Regge approach. The string fusion effects were taken into account by implementing of a lattice (grid) in the impact parameter plane. The scaled and robust multiplicity variance for pp collisions is calculated at three initial energies: 0.9, 2.76 and 7 TeV, and it is shown that the results obtained with string fusion included are in better agreement with the experimental values of the ALICE collaboration at CERN than those without string fusion. It is also demonstrated that for pp collisions at LHC energies, fluctuations in the number of particles from a given string cluster, due to the presence of short-range correlations between particles, significantly exceed the Poisson ones.

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来源期刊
Physics of Atomic Nuclei
Physics of Atomic Nuclei 物理-物理:核物理
CiteScore
0.60
自引率
25.00%
发文量
56
审稿时长
3-6 weeks
期刊介绍: Physics of Atomic Nuclei is a journal that covers experimental and theoretical studies of nuclear physics: nuclear structure, spectra, and properties; radiation, fission, and nuclear reactions induced by photons, leptons, hadrons, and nuclei; fundamental interactions and symmetries; hadrons (with light, strange, charm, and bottom quarks); particle collisions at high and superhigh energies; gauge and unified quantum field theories, quark models, supersymmetry and supergravity, astrophysics and cosmology.
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