论文标题

中子恒星合并的运输

Transport in neutron star mergers

论文作者

Harris, Steven P.

论文摘要

在介绍了QCD相图,国家核方程和中子星合并之后,我讨论了与中子星合并中与运输和核物质有关的三个项目。首先是与中微子透明的合并部分中β平衡的性质。我们计算弱相互作用(URCA)速率,并发现需要通过添加额外的化学势来修改β平衡条件,从而在中微子透明β平衡中稍微改变了粒子含量。其次,我们计算中微子 - 透明核物质在中子恒星合并中遇到的中微子 - 透明核物质的大量粘度。块状粘度是由核物质压力和密度之间的相位滞后引起的,这是由于β平衡的有限速率。当散装粘度足够强,当平衡速率几乎与密度振荡的频率相匹配时,就会发生这种情况时,它会明显削弱振荡。我们发现,在合并中可能遇到的某些热力学条件下,核物质的振荡可以按10毫秒的时间尺寸降低,因此我们得出结论,合并模拟中应包括大量粘度。最后,我们研究了由于中子恒星合并中的轴轴而导致的热运输。我们得出的结论是,轴永远不会被捕获在合并中,而是逃脱,从合并中承受了能量。我们计算出由于轴所带来的能量而导致的冷却时间,并发现在轴突核子耦合的电流约束中,轴可以在时间标准上的合并中冷却可能影响合并动力学的流体元素。

After an introduction to the QCD phase diagram, the nuclear equations of state, and neutron star mergers, I discuss three projects related to transport and nuclear matter in neutron star mergers. The first is the nature of beta equilibrium in the portion of a merger that is transparent to neutrinos. We calculate the weak interaction (Urca) rates and find that the beta equilibrium condition needs to be modified by adding an additional chemical potential, which changes slightly the particle content in neutrino-transparent beta equilibrium. Secondly, we calculate the bulk viscosity in neutrino-transparent nuclear matter in conditions encountered in neutron star mergers. Bulk viscosity arises from a phase lag between the pressure and density in the nuclear matter, which is due to the finite rate of beta equilibration. When bulk viscosity is sufficiently strong, which happens when the equilibration rate nearly matches the frequency of the density oscillation, it can noticeably dampen the oscillation. We find that in certain thermodynamic conditions likely encountered in mergers, oscillations in nuclear matter can be damped on timescales on the order of 10 milliseconds, so we conclude that bulk viscosity should be included in merger simulations. Finally, we study thermal transport due to axions in neutron star mergers. We conclude that axions are never trapped in mergers, but instead escape, carrying energy away from the merger. We calculate the cooling time due to the energy carried away by axions and find that within current constraints on the axion-nucleon coupling, axions could cool fluid elements in mergers on timescales which could affect the dynamics of the merger.

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