English

Ensemble-mean $\bf p_t$ and hadron production in high-energy nuclear collisions

High Energy Physics - Phenomenology 2017-09-01 v1

Abstract

A two-component (soft + hard) model (TCM) of hadron production in high-energy nuclear collisions is applied to ensemble-mean ptp_t (denoted by pˉt\bar p_t) data for pp-pp, pp-Pb and Pb-Pb collisions from the relativistic heavy ion collider (RHIC) and large hadron collider (LHC). This pˉt\bar p_t TCM is directly related to a recently-published TCM for the charge-multiplicity nchn_{ch} and collision-energy dependence of ptp_t spectrum data from pp-pp collisions. Multiplicity dependence of the pp-pp spectrum hard component observed in the previous study is consistent with similar behavior for pˉt\bar p_t hard component pˉth\bar p_{th}. pp-pp pˉt\bar p_t nchn_{ch} dependence is observed to follow a noneikonal trend for the TCM hard component (dijet production nch2\propto n_{ch}^2), whereas the trend for Pb-Pb collisions is consistent with the eikonal approximation assumed for the Glauber A-A centrality model. The pp-Pb trend is intermediate, transitioning from the noneikonal pp-pp trend for more-peripheral collisions to an eikonal trend for more-central collisions. The multiplicity dependence of participant number NpartN_{part} and binary-collision number NbinN_{bin} inferred from pp-Pb pˉt\bar p_t data differs strongly from a Glauber Monte Carlo model of that system. The rapid increase with nchn_{ch} and large magnitude of pˉt\bar p_t for the pp-pp and pp-Pb systems suggests that minimum-bias jets (TCM hard component) dominate pˉt\bar p_t variation. The trend for pˉth\bar p_{th} in Pb-Pb collisions is consistent with quantitative modification of jet formation in more-central A-A collisions.

Keywords

Cite

@article{arxiv.1708.09412,
  title  = {Ensemble-mean $\bf p_t$ and hadron production in high-energy nuclear collisions},
  author = {Thomas A. Trainor},
  journal= {arXiv preprint arXiv:1708.09412},
  year   = {2017}
}

Comments

20 pages, 16 figures