Warm asymmetric quark matter and proto-quark stars within the confined-isospin-density-dependent mass model
arXiv:1708.03428 · doi:10.1103/PhysRevD.96.103001
Abstract
We extend the confined-isospin-density-dependent mass (CIDDM) model to include temperature dependence of the equivalent mass for quarks. Within the CIDDM model, we study the equation of state (EOS) for -equilibrium quark matter, quark symmetry energy, quark symmetry free energy, and the properties of quark stars at finite temperature. We find that including the temperature dependence of the equivalent mass can significantly influence the properties of the strange quark matter (SQM) as well as the quark symmetry energy, the quark symmetry free energy, and the maximum mass of quark stars at finite temperature. The mass-radius relations for different stages of the proto-quark stars (PQSs) along the star evolution are analyzed. Our results indicate that the heating (cooling) process for PQSs will increase (decrease) the maximum mass within CIDDM model by including temperature dependence of the equivalent mass for quarks.
9 pages, 5 figures. Presentation improved and discussions added. Accepted version to appear in PRD
References in corpus (9)
- A Massive Pulsar in a Compact Relativistic Binary
- Deconfinement phase transition in hybrid neutron stars from the Brueckner theory with three-body forces and a quark model with chiral mass scaling
- Thermodynamics with density and temperature dependent particle masses and properties of bulk strange quark matter and strangelets
- Testing Deconfinement at High Isospin Density
- Hybrid protoneutron stars with the MIT bag model
- Quark magnetar in three-flavor Nambu--Jona-Lasinio model with vector interaction and magnetized gluon potential
- Quark stars under strong magnetic fields
- Lepton effects on the proto-neutron stars with the hadron-quark mixed phase in the Nambu-Jona-Lasinio model
- Structure of hybrid protoneutron stars within the Nambu--Jona-Lasinio model