Azimuthal anisotropy measurements of strange and multistrange hadrons in U+U collisions at $\sqrt{s_{NN}} = 193$ GeV at the BNL Relativistic Heavy Ion Collider
STAR Collaboration: M. S. Abdallah, J. Adam, L. Adamczyk, J. R. Adams,, J. K. Adkins, G. Agakishiev, I. Aggarwal, M. M. Aggarwal, Z. Ahammed, I., Alekseev, D. M. Anderson, A. Aparin, E. C. Aschenauer, M. U. Ashraf, F. G., Atetalla, A. Attri, G. S. Averichev, V. Bairathi

TL;DR
This paper reports detailed measurements of azimuthal anisotropy for strange and multistrange hadrons in uranium-uranium collisions at 193 GeV, analyzing flow coefficients and their scaling behaviors to understand system size effects and collectivity.
Contribution
It provides the first systematic study of flow coefficients for strange hadrons in U+U collisions and compares these with models to explore collective behavior and system size dependence.
Findings
Smaller $v_2/\varepsilon_2$ in U+U than in Au+Au collisions.
Number of constituent quark scaling observed in flow coefficients.
Ratios of flow harmonics compared with hydrodynamic and transport models.
Abstract
We present systematic measurements of azimuthal anisotropy for strange and multistrange hadrons (, , , and ) and mesons at midrapidity ( 1.0) in collisions of U + U nuclei at GeV, recorded by the STAR detector at the Relativistic Heavy Ion Collider. Transverse momentum () dependence of flow coefficients (, , and ) is presented for minimum bias collisions and three different centrality intervals. Number of constituent quark scaling of the measured flow coefficients in U + U collisions is discussed. We also present the ratio of scaled by the participant eccentricity () to explore system size dependence and collectivity in U + U collisions. The magnitude of is found to be smaller in U + U collisions than that in…
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