Simulating Binary Neutron Stars with Hybrid Equation of States: Gravitational Waves, Electromagnetic Signatures and Challenges for Numerical Relativity

被引:14
作者
Gieg, Henrique [1 ]
Dietrich, Tim [2 ]
Ujevic, Maximiliano [1 ]
机构
[1] Univ Fed ABC, Ctr Ciencias Nat & Humanas, BR-09210170 Santo Andre, SP, Brazil
[2] Nikhef, Sci Pk, NL-1098 XG Amsterdam, Netherlands
基金
欧盟地平线“2020”;
关键词
numerical relativity; equation of state; binary neutron stars; gravitational waves; phase transition; strange quark matter; PHASE-TRANSITION; DRIVEN WINDS; MASS EJECTA; GAMMA-RAYS; MERGERS; ACCRETION; GW170817; MATTER; MODEL; NUCLEOSYNTHESIS;
D O I
10.3390/particles2030023
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
The gravitational wave and electromagnetic signatures connected to the merger of two neutron stars allow us to test the nature of matter at supranuclear densities. Since the Equation of State governing the interior of neutron stars is only loosely constrained, there is even the possibility that strange quark matter exists inside the core of neutron stars. We investigate how strange quark matter cores affect the binary neutron star coalescence by performing numerical relativity simulations. Interestingly, the strong phase transition can cause a reduction of the convergence order of the numerical schemes to first order if the numerical resolution is not high enough. Therefore, an additional challenge is added in producing high-quality gravitational wave templates for Equation of States with a strong phase transition. Focusing on one particular configuration of an equal mass configuration consistent with GW170817, we compute and discuss the associated gravitational wave signal and some of the electromagnetic counterparts connected to the merger of the two stars. We find that existing waveform approximants employed for the analysis of GW170817 allow describing this kind of systems within the numerical uncertainties, which, however, are several times larger than for pure hadronic Equation of States, which means that even higher resolutions have been employed for an accurate gravitational wave model comparison. We also show that for the chosen Equation of State, quasi-universal relations describing the gravitational wave emission after the moment of merger seem to hold and that the electromagnetic signatures connected to our chosen setup would not be bright enough to explain the kilonova associated to GW170817.
引用
收藏
页码:365 / 384
页数:20
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