PaperPanorama

Nuclear Theory·nucl-th

Monday·June 8, 2015

4 papers1 primary·3 cross-listed

  1. 02

    Observational constraints on neutron star crust-core coupling during glitches

    William G. Newton · Sabrina Berger · Brynmor Haskell

    We demonstrate that observations of glitches in the Vela pulsar can be used to investigate the strength of the crust-core coupling in a neutron star, and suggest that recovery from the glitch is dominated by torque exerted by the re-coupling of superfluid components of the core that were decoupled from the crust during the glitch. Assuming that the recoupling is mediated by mutual friction between the superfluid neutrons and the charged components of the core, we use the observed magnitudes and timescales of the shortest timescale components of the recoveries from two recent glitches in the Vela pulsar to infer the fraction of the core that is coupled to the crust during the glitch, and hence spun up by the glitch event. Within the framework of a two-fluid hydrodynamic model of glitches, we analyze whether crustal neutrons alone are sufficient to drive the glitch activity observed in the Vela pulsar. We use two sets of neutron star equations of state (EOSs), both of which span crust and core consistently and cover a range of the slope of the symmetry energy at saturation density MeV. One set produces maximum masses 2.0, the second 2.6. We also include the effects of entrainment of crustal neutrons by the superfluid lattice. We find that for medium to stiff EOSs, observations imply of the moment of inertia of the core is coupled to the crust during the glitch, though for softer EOSs MeV as little as could be coupled. No EOS is able to reproduce the observed glitch activity with crust neutrons alone, but extending the region where superfluid vortices are strongly pinned into the core by densities as little as 0.016fm above the crust-core transition density restores agreement with the observed glitch activity.

    astro-ph.SRastro-ph.HEnucl-thMNRAS(2015)·33 citations
  2. 03

    Compact stars in a SU(3) Quark-Meson Model

    Andreas Zacchi🇩🇪 · Rainer Stiele🇩🇪 · Juergen Schaffner-Bielich🇩🇪

    The recent observations of the massive pulsars PSR J1614-2230 and of PSR J0348+0432 with about two solar masses implies strong constraints on the properties of dense matter in the core of compact stars. Effective models of QCD aiming to describe neutron star matter can thereby be considerably constrained. In this context, a chiral quark-meson model based on a SU(3) linear -model with a vacuum pressure and vector meson exchange is discussed in this work. The impact of its various terms and parameters on the equation of state and the maximum mass of compact stars are delineated to check whether pure quark stars with two solar masses are feasible within this approach. Large vector meson coupling constant and a small vacuum pressure allow for maximum masses of two or more solar masses. However, pure quark stars made of absolutely stable strange quark matter, so called strange stars, turn out to be restricted to a quite small parameter range.

    astro-ph.HEhep-phnucl-thPRD(2015)·54 citations
  3. 04

    Oscillations at low energies

    D. A. Dwyer🇺🇸 · L. Ludhova🇮🇹

    A concise summary of the "Oscillation at low energies" parallel session at the 2014 Neutrino Oscillation Workshop is provided. Plans to use man-made neutrinos and antineutrinos to determine the neutrino mass hierarchy, search for sterile neutrinos, and to observe coherent neutrino-nucleus scattering were discussed. Potential measurements of solar neutrinos, supernova neutrinos, and geoneutrinos are also summarized.

    nucl-exhep-exhep-phnucl-th+1Nucl.Part.Phys.Proc.(2015)·0 citations

Affiliations

first authorsco-authorsvia INSPIRE