arXiv:1801.05862·v1·High Energy Physics — Phenomenology
Glauber-model analysis of 5 TeV -Pb centrality compared to a two-component (soft + hard) model of hadron production in high-energy nuclear collisions
Abstract
A recent study of 5 TeV -Pb centrality combined a Glauber model of -Pb collision geometry with an assumption of linear scaling between (charge) integrated within some acceptance and the number of nucleon participants . The study concluded that increases to nearly 16 in central collisions, and the high- region of -Pb spectra rescaled by the Glauber-estimated number of -N binary collisions remains consistent with a - spectrum for the same energy, independent of -Pb centrality. However, the relation between and derived from a two-component (soft + hard) model (TCM) study of ensemble-mean data for the same system is quite different. This article reports a detailed analysis of the Glauber study and the question of centrality in -A collisions. The Glauber centrality model is compared with the TCM to understand the sources of major differences. The assumption of linear proportionality between and is found to be inconsistent with data. Properties of the convolution integral relating a differential cross section and hadron production model to an event distribution on are examined. An alternative differential-cross-section distribution is inferred from charge-multiplicity data, and the upper limit on is estimated to be near 8. The TCM centrality model is then applied to spectrum ratios to predict results for -Pb spectra. The spectrum TCM is tested with identified-pion spectra from 5 TeV -Pb collisions and the result is consistent with previous - TCM results. A TCM prediction that the spectrum ratio at high should increase to 14 for central -Pb collisions due to quadratic dependence of dijet production on is consistent with data from the same system.
Comments: 24 pages, 25 figures