English

Unified description of high-energy nuclear collisions based on dynamical core--corona picture

Nuclear Theory 2022-08-16 v1 High Energy Physics - Phenomenology Nuclear Experiment

Abstract

I establish the dynamical core--corona initialization framework (DCCI2) as a state-of-the-art dynamical framework that is capable of describing small and large colliding systems at the LHC energies. Under the core--corona picture, contributions from both equilibrated (core) and non-equilibrated (corona) components are implemented. I describe the dynamical separation of the system into the core and corona at the initial stage by incorporating the core--corona picture into the novel dynamical initialization framework. With DCCI2, I simulate pp+pp collisions at s=7,13\sqrt{s}=7, 13 TeV and PbPb+PbPb collisions at sNN=2.76\sqrt{s_{\mathrm{NN}}}=2.76 TeV. Especially, I extract the fractions of core and corona components in final hadron yields in pp+pp and PbPb+PbPb collisions as functions of multiplicity, and reveal that the core components become dominant at dNch/dηη<0.520\langle dN_{\mathrm{ch}}/d\eta \rangle_{|\eta|<0.5} \approx 20. I also find that the corona contribution at very low pTp_T (below pT1p_T\approx1 GeV) is non-negligible even in PbPb+PbPb collisions and show that such contributions significantly affect pTp_T-integrated flow coefficients. These results strongly suggest the importance of considering non-equilibrated components to extract transport coefficients of quark-gluon plasma from model-to-data comparisons quantitatively.

Keywords

Cite

@article{arxiv.2208.07029,
  title  = {Unified description of high-energy nuclear collisions based on dynamical core--corona picture},
  author = {Yuuka Kanakubo},
  journal= {arXiv preprint arXiv:2208.07029},
  year   = {2022}
}

Comments

183 pages, Ph.D. thesis, overlap with arXiv:2207.13966 and arXiv:2108.07943