PaperPanorama

Nuclear Theory·nucl-th

Friday·June 26, 2015

3 papers1 primary·2 cross-listed

  1. 02

    Bayesian analysis for two-parameter hybrid EoS with high-mass compact star twins

    David E. Alvarez-Castillo🇷🇺 · Alexander Ayriyan🇷🇺 · David Blaschke🇷🇺 · Hovik Grigorian🇷🇺

    We perform a Bayesian analysis in the basis of a recently developed two-parameter class of hybrid equations of state that allow for high-mass compact star twins. While recently a wide range of radii, from 9 - 15 km, has been inferred for different neutron stars using different techniques, we perform our analysis under the supposition that the radii are towards the large end ( km). We use this radius constraint together with the undebated statistically independent constraint for high masses () as priors in selecting the most probable hybrid equations of state from a family with two free parameters: the baryon excluded volume in the hadronic phase and the 8-quark vector channel interaction in the quark matter phase.

    astro-ph.HEhep-phnucl-theConf C140926 (2015)·5 citations
  2. 03

    Thermalization of mini-jets in a quark-gluon plasma

    Edmond Iancu🇫🇷 · Bin Wu🇫🇷

    We complete the physical picture for the evolution of a high-energy jet propagating through a weakly-coupled quark-gluon plasma by investigating the thermalization of the soft components of the jet. We argue that the following scenario should hold: the leading particle emits a significant number of mini-jets which promptly evolve via quasi-democratic branchings and thus degrade into a myriad of soft gluons, with energies of the order of the medium temperature T. Via elastic collisions with the medium constituents, these soft gluons relax to local thermal equilibrium with the plasma over a time scale which is considerably shorter than the typical lifetime of the mini-jet. The thermalized gluons form a tail which lags behind the hard components of the jet. We support this scenario, first, via parametric arguments and, next, by studying a simplified kinetic equation, which describes the jet dynamics in longitudinal phase-space. We solve the kinetic equation using both (semi-)analytical and numerical methods. In particular, we obtain the first exact, analytic, solutions to the ultrarelativistic Fokker-Planck equation in one-dimensional phase-space. Our results confirm the physical picture aforementioned and demonstrate the quenching of the jet via multiple branching followed by the thermalization of the soft gluons in the cascades.

    hep-phhep-exnucl-thJHEP(2015)·54 citations

Affiliations

first authorsco-authorsvia INSPIRE