Effects of light-cluster degrees of freedom on collective flows in heavy-ion collisions at FOPI energies
Xin Li, Si-Pei Wang, Rui Wang, Zhen Zhang, Jie Pu, Chun-Wang Ma, Lie-Wen Chen
Abstract
Within a lattice Boltzmann-Uehling-Uhlenbeck transport model coupled to a kinetic approach for light-cluster formation, we investigate the impact of explicit light-cluster degrees of freedom on collective flows in Au+Au collisions at FOPI energies with beam energies E beam= 120--1500 A MeV by using a density-, momentum-, and isospin-dependent N5LO Skyrme pseudopotential. We first benchmark the kinetic approach by comparing the calculated light-cluster yields with FOPI data in central Au+Au collisions. We then analyze the collective flows of protons and light nuclei (deuterons, tritons, 3He, and 4He) in mid-central collisions. For protons, calculations with and without dynamical light-cluster degrees of freedom are compared to quantify the influence of dynamical cluster formation on proton directed (v1), elliptic (v2), triangular (v3), and quadrangular (v4) flows. We find that the dynamical light-cluster effect appreciably modifies proton v1--v4 flows at E beam=120--150 A MeV, remains visible at E beam=250--400 A MeV, and gradually weakens at E beam 600 A MeV. For light nuclei, the kinetic approach captures the overall beam-energy dependence of the FOPI flow data, with better agreement for E beam≥ 400 A MeV. We further examine the nucleon-number scaling of v2/A in both model calculations and experimental data, finding that the kinetic light-cluster formation approach qualitatively reproduces the observed scaling behavior. These results highlight the importance of a dynamical treatment of light-cluster formation for interpreting collective flows in heavy-ion collisions below about 600 A MeV, although the clustering effects on proton flows are minor at higher collision energies.
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