PaperPanorama

Nuclear Theory·nucl-th

Thursday·January 23, 2020

6 papers4 primary·2 cross-listed

  1. 05

    [Submitted on 22 Jan 2020] (cross-list from hep-ph)

    Relativistic hypernuclear compact stars with calibrated equations of state

    M. Fortin🇵🇱 · A. R. Raduta🇷🇴 · S. Avancini🇧🇷 · C. Providência🇵🇹

    Within the covariant density functional theory of hypernuclear matter we build a series of equations of state for hypernuclear compact stars, by calibrating the coupling constants of the -hyperon to the experimental binding energy of the single- hypernuclei C and Be. Coupling constants of the -hyperon to nucleons have been calibrated on a vast collection of experimental data on single -hypernuclei and we employ those values. Uncertainties on the couplings of the -hyperon to nuclear matter, due to lack of experimental data, are accounted for by allowing for a wide variation of the well depth of at rest in symmetric saturated nuclear matter. To account for uncertainties in the nucleonic sector at densities much larger than the saturation density, a rich collection of parametrizations is employed, some of them in agreement with existing constraints from nuclear physics and astrophysics. Neutron star properties are investigated with all these calibrated equations of state. The effects of the presence of hyperons on the radius, on the tidal deformability, on the moment of inertia, and on the nucleonic direct Urca process are discussed. The sensitivity of the hyperonic direct Urca processes to uncertainties in the nucleonic and hyperonic sectors is also addressed. It is shown that the relative variations of the radius, tidal deformability and moment of inertia from the values that characterize purely nucleonic stars are linearly correlated with the strangeness fraction. The maximum radius deviation, obtained for most massive neutron stars, is . The reduction of the maximum mass, triggered by nucleation of strangeness, is estimated at , out of which 5\% comes from insufficient information on the -hyperon interactions.

    Comments:
    Open access. Supplemental Material available at https://journals.aps.org/prd/abstract/10.1103/PhysRevD.101.034017
    Subjects:
    High Energy Physics — Phenomenology (hep-ph); High Energy Astrophysical Phenomena (astro-ph.HE); Nuclear Theory (nucl-th)
    arXiv:
    2001.08036 [pdf]
    PRD(2020)·61 citations
  2. 06

    [Submitted on 22 Jan 2020] (cross-list from hep-ph)

    Effects of local event-by-event conservation laws in ultra-relativistic heavy ion collisions at the particlization

    Dmytro Oliinychenko🇺🇸 · Shuzhe Shi🇨🇦 · Volker Koch🇺🇸

    Many simulations of relativistic heavy ion collisions involve the switching from relativistic hydrodynamics to kinetic particle transport. This switching entails the sampling of particles from the distribution of energy, momentum and conserved currents provided by hydrodynamics. Usually this sampling ensures the conservation of these quantities only on the average, i.e. the conserved quantities may actually fluctuate among the sampled particle configurations and only their averages over many such configurations agree with their values from hydrodynamics. Here we apply a recently invented method [Oliinychenko, Koch; PRL 123, 18, 182302 (2019)] to ensure conservation laws for each sampled configuration in spatially compact regions (patches) and study their effects: from the well-known (micro-)canonical suppression of means and variances to little studied (micro-)canonical correlations and higher order fluctuations. Most of these effects are sensitive to the patch size. Many of them do not disappear even in the thermodynamic limit, when the patch size goes to infinity. The developed method is essential for particlization of stochastic hydrodynamics. It is useful for studying the chiral magnetic effect, small systems, and in general for fluctuation and correlation observables.

    Comments:
    40 pages, 9 figures, version accepted to Phys. Rev. C
    Subjects:
    High Energy Physics — Phenomenology (hep-ph); Nuclear Theory (nucl-th)
    arXiv:
    2001.08176 [pdf]
    PRC(2020)·31 citations

Affiliations

first authorsco-authorsvia INSPIRE