论文标题
热力学的热力学描述,快速旋转中子星,尼多尔星和中子星剩余
Thermodynamical Description of Hot, Rapidly Rotating Neutron Stars, Protoneutron Stars, and Neutron Star Merger Remnants
论文作者
论文摘要
热,密集的核物质状态方程的预测是核天体物理学中最复杂,最有趣的问题之一。同时,知识是一些最有趣的研究的基本要素。在目前的工作中,我们将研究集中在热,密集的核物质状态的方程式上,这主要与中子恒星的内部有关。我们采用理论核模型,其中包括核子之间动量依赖性的相互作用,以及\ textit {最新的微观计算。热效应以一种自洽的方式引入,并预测一组等温和等温度方程。使用预测的状态方程,以获取并扩展对非旋转和用开普勒频率中子恒星快速旋转的热效应的知识。对热和旋转效应的同时研究为一些最重要的数量提供了有用的信息,包括质量(重力和重力)和半径,开普勒频率和kerr参数,惯性矩等。这些数量直接与Protoneutron Stars的研究直接相关。来自二进制中子星合并和本研究的晚期观察结果的数据可能为其研究提供有用的工具,并有助于提供对核物质状态方程的可能限制。
The prediction of the equation of state of hot, dense nuclear matter is one of the most complicated and interesting problems in nuclear astrophysics. At the same time, knowledge of it is the basic ingredient for some of the most interesting studies. In the present work, we concentrate our study on the construction of the equation of state of hot, dense nuclear matter, related mainly to the interior of the neutron star. We employ a theoretical nuclear model, which includes momentum-dependent interaction among the nucleons, along with the \textit{state-of-the-art} microscopic calculations. Thermal effects are introduced in a self-consistent way, and a set of isothermal and isentropic equations of state are predicted. The predicted equations of state are used in order to acquire and to extend the knowledge of the thermal effect on both nonrotating and rapidly rotating with the Kepler frequency neutron stars. The simultaneous study of thermal and rotation effects provides useful information on some of the most important quantities, including the mass (gravitational and baryon) and radius, the Kepler frequency and Kerr parameter, the moment of inertia, etc. These quantities are directly related to studies of protoneutron stars and mainly the hot and rapidly rotating remnant of a binary neutron star merger. Data from the late observations of binary neutron star mergers and the present study may offer useful tools for their investigation and help in providing possible constraints on the equation of state of nuclear matter.