论文标题
建模中子星的物质在多中元天体物理学时代
Modeling Neutron Star Matter in the Age of Multimessenger Astrophysics
论文作者
论文摘要
从多通用剂的天体物理观察获得的可用数据的解释(可能提供前所未有的中性星特性访问)将需要开发新颖,准确的密集物质理论模型。在这种情况下,非常重要的是,将能够设计出适用于用于研究国家方程以外的其他数量的热效应的描述,例如运输系数和核培养基中的中微子均值自由路径。先前已经采用了基于相关基础状态和集群扩展技术的形式主义来得出从最先进的核汉密尔顿(包括现象学的两种和三核电位)中得出良好的有效相互作用(适用于标准扰动理论)。在这里,我们提供了一种全面且独立的说明,该方法将这种方法扩展到有限温度效应的处理,并报告了核物质多种特性的数值计算结果,任意中子过高和温度高达50 MEV。
The interpretation of the available and forthcoming data obtained from multimessenger astrophysical observations -- potentially providing unprecedented access to neutron star properties -- will require the development of novel, accurate theoretical models of dense matter. Of great importance, in this context, will be the capability to devise a description of thermal effects applicable to the study of quantities other than the equation of state, such as the transport coefficients and the neutrino mean free path in the nuclear medium. The formalism based on correlated basis states and the cluster expansion technique has been previously employed to derive a well-behaved effective interaction -- suitable for use in standard perturbation theory -- from a state-of-the-art nuclear Hamiltonian, including phenomenological two- and three-nucleon potentials. Here, we provide a comprehensive and self-contained account of the extension of this approach to the treatment of finite-temperature effects, and report the results of numerical calculations of a number of properties of nuclear matter with arbitrary neutron excess and temperature up to 50 MeV.