PaperPanorama

Nuclear Theory·nucl-th

Thursday·May 18, 2023

11 papers5 primary·6 cross-listed

  1. 01

    Experimental nuclear charge density and theoretical description of the above-barrier light heavy-ion fusion process

    I. I. Gontchar · M. V. Chushnyakova

    Theoretical modeling of nucleus-nucleus collision often is based on the nucleus-nucleus potential. One of the advanced methods for constructing this potential is the semi-microscopical double-folding model with the M3Y-Paris NN-forces. Proton and neutron densities are significant ingredient of this model. Correct nucleon density (ND) must reproduce experimental nuclear charge density (NCD). We consider several versions of NDs available in the literature and construct our own approximation for the ND of even-even spherical nuclei 12C, 16O, 40Ca which is abbreviated as FE-density (Fermi+exponential). We carefully compare the NCDs resulting from different versions of NDs with the experimental NCSs. After finding the nucleus-nucleus potential using the double-folding model with the density dependent M3Y-Paris NN-forces and FE densities we evaluate the above-barrier fusion cross sections for five reactions, 12C+12C, 12C+16O, 16O+16O, 16O+40Ca, and 40Ca+40Ca, where the experimental data are available. The cross sections are calculated using two approaches: a) the barrier penetration model and b) the Trajectory Model with surface friction (TM). To find the transmission coefficients for TM, the Langevin equations are employed. For all considered reactions, our TM typically reproduces the above-barrier experimental cross sections within 10-15%. The only adjustable parameter of the model, the optimal friction strength K_Rm, was found to be about 90 zs/GeV for light reactions 12C+12C, 12C+16O, 16O+16O and about 15 zs/GeV for heavier reactions 16O+40Ca and 40Ca+40Ca. The latter findings are in reasonable agreement with the systematics found earlier. Thus, the FE-recipe allows reproducing simultaneously with good accuracy both the charge nucleon density and the above-barrier fusion cross sections for five reactions involving 12C, 16O, 40Ca nuclei.

    nucl-thCPC(2023)·2 citations
  2. 02

    Machine learning study to identify collective flow in small and large colliding systems

    Shuang Guo🇨🇳 · Han-Sheng Wang🇨🇳 · Kai Zhou🇩🇪 · Guo-Liang Ma🇨🇳

    Collective flow has been found to be similar between small colliding systems ( and A collisions) and large colliding systems (peripheral A A collisions) at the CERN Large Hadron Collider. In order to study the differences of collective flow between small and large colliding systems, we employ a point cloud network to identify Pb collisions and peripheral Pb Pb collisions at 5.02 TeV generated from a multiphase transport model (AMPT). After removing the discrepancies in the pseudorapidity distribution and the spectra, we capture the discrepancy in collective flow. Although the verification accuracy of our PCN is limited due to similar event-by-event distributions of elliptic and triangular flow, we demonstrate that collective flow between Pb collisions and peripheral Pb Pb collisions becomes more distinct with increasing final hadron multiplicity and parton scattering cross section. This study not only highlights the potential of PCN techniques in advancing the understanding of collective flow in varying colliding systems, but more importantly lays the groundwork for the future PCN-related research.

    nucl-thhep-phnucl-exPRC(2024)·10 citations
  3. 03

    Effect of the Coriolis force on the electrical conductivity of quark matter: A nonrelativistic description

    Ashutosh Dwibedi🇮🇳 · Cho Win Aung🇮🇳 · Jayanta Dey🇮🇳 · Sabyasachi Ghosh🇮🇳

    Rotating quarks and hadronic systems, produced in peripheral heavy ion collisions, can experience Coriolis force and other forces due to rotational motion. Considering only the effect of Coriolis force, we have calculated the electrical conductivity for non-relativistic rotating matter using the Relaxation Time Approximation based Boltzmann transport equation. A similarity in mathematical calculations of electrical conductivity at finite rotation and finite magnetic fields is exposed, where an equivalence role between Coriolis force on massive particle's motion and Lorentz force on charged particle's motion is noticed. As the beginning level step, we consider only the Coriolis force in the non-relativistic formalism, which will be extended in the future towards the relativistic case, and to adopt other forces for a more realistic description of the rotating quark and hadronic system.

    nucl-thcond-mat.stat-mechhep-phPRC(2024)·11 citations
  4. 04

    Truncated Partial-Wave Analysis for -photoproduction observables via Bayesian Statistics

    Philipp Kroenert🇩🇪 · Yannick Wunderlich🇩🇪 · Farah Afzal🇩🇪 · Annika Thiel🇩🇪

    A truncated partial-wave analysis is performed for -photoproduction using the polarization observables and . Different truncation orders are analyzed for six energy bins within the range of MeV. Bayesian statistics is combined with truncated partial-wave analysis for the first time to investigate the structure of emerging ambiguities and their relevance in comparison to each other. Marginal distributions for the electromagnetic multipole parameters are presented together with predictions for polarization observables which have not yet been measured, in order to determine promising future measurements able to remove remaining mathematical ambiguities.

    nucl-thPRC(2024)·8 citations
  5. 05

    Baryon diffusion coefficient of the strongly interacting medium

    Tribhuban Parida🇮🇳 · Sandeep Chatterjee🇮🇳

    We propose that the transverse momentum () differential splitting of directed flow () between proton and anti-proton can serve as a sensitive observable to extract the baryon diffusion coefficient () of the hot and dense strongly interacting matter produced in relativistic heavy ion collisions. We use relativistic dissipative hydrodynamics framework with Glauber model based initial condition for the energy as well as baryon deposition that is calibrated to capture the rapidity dependence of charged particle multiplicity, net proton yield as well as the elusive splitting between proton and anti-proton. We employ the commonly used kinetic theory motivated ansatz: where , , , and are baryon number density, energy density, pressure, temperature and baryon chemical potential respectively while is an arbitrary constant which is largely unknown for the Quantum Chromodynamics (QCD) medium. We find that the variation of with is strongly influenced by the choice of . Further, we find that the recent STAR measurement of the centrality dependence of the rapidity slope of prefers .

    nucl-thhep-exhep-phnucl-ex8 citations

Affiliations

first authorsco-authorsvia INSPIRE