PaperPanorama

Nuclear Theory·nucl-th

Friday·February 19, 2016

4 papers2 primary·2 cross-listed

  1. 03

    Physics of Core-Collapse Supernovae in Three Dimensions: a Sneak Preview

    H.-Thomas Janka (1)🇩🇪 · Tobias Melson (1,2)🇩🇪 · Alexander Summa (1) ((1) MPI Astrophysics, Garching, (2) Physik Dept., TUM, Garching)🇩🇪

    Nonspherical mass motions are a generic feature of core-collapse supernovae, and hydrodynamic instabilities play a crucial role for the explosion mechanism. First successful neutrino-driven explosions could be obtained with self-consistent, first-principle simulations in three spatial dimensions (3D). But 3D models tend to be less prone to explosion than corresponding axisymmetric (2D) ones. This has been explained by 3D turbulence leading to energy cascading from large to small spatial scales, inversely to the 2D case, thus disfavoring the growth of buoyant plumes on the largest scales. Unless the inertia to explode simply reflects a lack of sufficient resolution in relevant regions, it suggests that some important aspect may still be missing for robust and sufficiently energetic neutrino-powered explosions. Such deficits could be associated with progenitor properties like rotation, magnetic fields or pre-collapse perturbations, or with microphysics that could lead to an enhancement of neutrino heating behind the shock. 3D simulations have also revealed new phenomena that are not present in 2D, for example spiral modes of the standing accretion shock instability (SASI) and a stunning dipolar lepton-emission self-sustained asymmetry (LESA). Both impose time- and direction-dependent variations on the detectable neutrino signal. The understanding of these effects and of their consequences is still in its infancy.

    astro-ph.SRhep-phnucl-thAnn.Rev.Nucl.Part.Sci.(2016)·453 citations
  2. 04

    Confronting fluctuations of conserved charges in central nuclear collisions at the LHC with predictions from Lattice QCD

    P. Braun-Munzinger🇩🇪 · A. Kalweit🇨🇭 · K. Redlich🇩🇪 · J. Stachel🇩🇪

    We construct net baryon number and strangeness susceptibilities as well as correlations between electric charge, strangeness and baryon number from experimental data on the particle production yields at midrapidity of the ALICE Collaboration at CERN. The data were taken in central Pb-Pb collisions at ~=~2.76~TeV and cover one unit of rapidity. We show that the resulting fluctuations and correlations are consistent with Lattice QCD results at the chiral crossover pseudocritical temperature 155 MeV. This agreement lends strong support to the assumption that the fireball created in these collisions is of thermal origin and exhibits characteristic properties expected in QCD at the transition from the quark gluon plasma to the hadronic phase. Since Lattice QCD calculations are performed at a baryochemical potential of = 0, the comparisons with LHC data are the most direct due to the vanishing baryon transport to midrapidity at these high energies.

    hep-phhep-latnucl-thNPA(2016)·7 citations

Affiliations

first authorsco-authorsvia INSPIRE