English

Smallest QCD Droplet and Multiparticle Correlations in pp Collisions

Nuclear Theory 2022-02-22 v3 High Energy Physics - Phenomenology Nuclear Experiment

Abstract

The collective evolution of produced matter in heavy-ion collisions is effectively described by hydrodynamics from time scales greater than the inverse of the temperature, τ1/T\tau \gtrsim 1/T. In the context of the Gubser solution, I show that the hydrodynamization condition τT1\tau \, T \gtrsim 1 is translated into an allowed domain in the spatial system size and the final multiplicity for hydrodynamics applicability. It turns out that the flow measurements in pp collisions are inside the domain of validity. I predict that by approaching the boundaries of the allowed domain the hydrodynamic response to the initial ellipticity changes its sign. I follow a rather model-independent approach for the initial state where, instead of modeling the initial energy density of individual events, the initial system size and ellipticity event-by-event fluctuation are modeled. The model, initial state fluctuation+Gubser solution+Cooper-Frye freeze-out, describes the multiplicity and transverse momentum dependence of two-point and four-point correlation functions (c2{2}c_2\{2\} and c2{4}c_2\{4\}) in an accurate agreement with pp collision experimental measurements. In particular, the sign of the four-point correlation function is the same as the observation, which failed to be described correctly in previous studies. I also predict a signal for the sign change in the hydrodynamic response that can be inspected in future experimental measurements of two-point and four-point correlation functions at lower multiplicities.

Keywords

Cite

@article{arxiv.1907.12140,
  title  = {Smallest QCD Droplet and Multiparticle Correlations in pp Collisions},
  author = {Seyed Farid Taghavi},
  journal= {arXiv preprint arXiv:1907.12140},
  year   = {2022}
}

Comments

14 pages, 7 figures, 1 table, published version

R2 v1 2026-06-23T10:33:13.240Z