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arXiv:2601.02691·v1·Nuclear Theory

Collision energy and system size dependence of longitudinal flow decorrelation in heavy-ion collisions at RHIC energies

Gaoguo Yan🇨🇳 · Maowu Nie🇨🇳 · Zhenyu Chen🇨🇳 · Li Yi🇨🇳 · Jiangyong Jia🇨🇳

Abstract

In heavy-ion collisions, the initial collision geometry and its fluctuations drive the collective expansion of final-state hadrons in the transverse plane. However, longitudinal fluctuations induce event-plane twist and flow magnitude asymmetries, collectively known as longitudinal flow decorrelation. Using a multi-phase transport (AMPT) model, we systematically investigate the dependence of collision energy and system size of this phenomenon with Au+Au collisions at = 19.6, 27, 54.4, 200 GeV and isobar collisions (Zr+Zr and Ru+Ru) at = 200 GeV. The results reveal two distinct decorrelation components: , which includes flow magnitude asymmetry and event-plane twist, and which arises purely from event-plane twist. Both and decrease linearly with and exhibit a significant dependence on collision energy and the size of the system. Through the slope parameters in the linear parametrization , we can quantify the strength of decorrelation. We further observe that both and demonstrate a pronounced power-law scaling behavior with collision energy, following the relation . These results provide valuable insights into the three-dimensional modeling of the initial stage and the evolution of relativistic heavy-ion collisions.

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