Momentum dependent measures of correlations between mean transverse momentum and harmonic flow in heavy ion collisions
Rupam Samanta, Piotr Bozek

TL;DR
This paper investigates how the correlation between mean transverse momentum and harmonic flow varies with momentum in heavy ion collisions, revealing sensitivity to initial state fluctuations, nuclear deformation, and shear viscosity.
Contribution
It introduces momentum-dependent covariance and correlation measures between mean transverse momentum and harmonic flow, providing new insights into initial state effects and medium properties.
Findings
Strong momentum dependence of correlation coefficients observed.
Sensitivity of the correlation shape to initial state granularity and deformation.
Correlation shape influenced by shear viscosity and small-scale fluctuations.
Abstract
The correlation between the mean transverse momentum and the harmonic flow coefficients is an observable which is of great interest; it is sensitive to shape fluctuations in the initial state of a relativistic nuclear collision. The measurement of that correlation coefficient in central collisions allows one to infer about the intrinsic deformation of the colliding nuclei. We propose to study the momentum dependent covariance and correlation coefficient between the mean transverse momentum and the harmonic flow in a given transverse momentum bin. Two possible constructions of such observables are provided and predictions are obtained from a viscous hydrodynamic model. We find that such momentum dependent correlation coefficients between the mean transverse momentum and the harmonic flow show a strong and nontrivial momentum dependence. We also explore the effects of granularity (nucleon…
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Taxonomy
TopicsHigh-Energy Particle Collisions Research · Quantum Chromodynamics and Particle Interactions · Cold Atom Physics and Bose-Einstein Condensates
