Novel scalings of neutron star properties from analyzing dimensionless Tolman–Oppenheimer–Volkoff equations

IF 2.6 3区 物理与天体物理 Q2 PHYSICS, NUCLEAR
Bao-Jun Cai, Bao-An Li
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引用次数: 0

Abstract

The Tolman–Oppenheimer–Volkoff (TOV) equations govern the radial evolution of pressure and energy density in static neutron stars (NSs) in hydrodynamical equilibrium. Using the reduced pressure and energy density with respect to the NS central energy density, the original TOV equations can be recast into dimensionless forms. While the traditionally used integral approach for solving the original TOV equations require an input nuclear Equation of State (EOS), the dimensionless TOV equations can be anatomized by using the reduced pressure and energy density as polynomials of the reduced radial coordinate without using any input nuclear EOS. It has been shown in several of our recent works that interesting and novel perspectives about NS core EOS can be extracted directly from NS observables by using the latter approach. Our approach is based on intrinsic and perturbative analyses of the dimensionless (IPAD) TOV equations (IPAD-TOV). In this review article, we first discuss the length and energy density scales of NSs as well as the dimensionless TOV equations for scaled variables and their perturbative solutions near NS cores. We then review several new insights into NS physics gained from solving perturbatively the scaled TOV equations. Whenever appropriate, comparisons with the traditional approach from solving the original TOV equations will be made. In particular, we first show that the nonlinearity of the TOV equations basically excludes a linear EOS for dense matter in NS cores. We then show that perturbative analyses of the scaled TOV equations enable us to reveal novel scalings of the NS mass, radius and the compactness with certain combinations of the NS central pressure and energy density. Thus, observational data on either mass, radius or compactness can be used to constrain directly the core EOS of NS matter independent of the still very uncertain nuclear EOS models. As examples, the EOS of the densest visible matter in our Universe before the most massive neutron stars collapse into black holes (BHs) as well as the central EOS of a canonical or a 2.1 solar mass NS are extracted without using any nuclear EOS model. In addition, we show that causality in NSs sets an upper bound of about 0.374 for the ratio of pressure over energy density and correspondingly a lower limit for trace anomaly in supra-dense matter. We also demonstrate that the strong-field gravity plays a fundamental role in extruding a peak in the density/radius profile of the speed of sound squared (SSS) in massive NS cores independent of the nuclear EOS. Finally, some future perspectives of NS research using the new approach reviewed here by solving perturbatively the dimensionless TOV equations are outlined.

从分析无量纲Tolman-Oppenheimer-Volkoff方程得到中子星特性的新标度
托尔曼-奥本海默-沃尔科夫(Tolman-Oppenheimer-Volkoff, TOV)方程描述了静态中子星在流体动力平衡状态下压力和能量密度的径向演化。利用相对于NS中心能量密度的减压和能量密度,可以将原TOV方程重化为无因次形式。传统的求解原始TOV方程的积分方法需要输入核状态方程(EOS),而无量纲TOV方程可以在不使用任何输入核状态方程的情况下,将减压和能量密度作为简化径向坐标的多项式进行解析。我们最近的几项研究表明,通过使用后一种方法,可以直接从NS可观测值中提取关于NS核心EOS的有趣和新颖的观点。我们的方法是基于无量纲(IPAD) TOV方程(IPAD-TOV)的本征和摄动分析。在这篇综述文章中,我们首先讨论了NSs的长度和能量密度尺度,以及尺度变量的无量纲TOV方程及其在NSs核附近的微扰解。然后,我们回顾了从摄动求解缩放TOV方程中获得的NS物理学的几个新见解。在适当的情况下,将与求解原始TOV方程的传统方法进行比较。特别是,我们首先证明了TOV方程的非线性基本上排除了NS核中致密物质的线性EOS。然后,我们证明了对缩放后的TOV方程的微扰分析使我们能够揭示NS质量、半径和紧致度在NS中心压力和能量密度的某些组合下的新缩放。因此,无论是质量、半径还是紧致度的观测数据都可以用来直接约束NS物质的核心EOS,而不依赖于仍然非常不确定的核EOS模型。作为例子,在没有使用任何核EOS模型的情况下,提取了我们宇宙中最密集的可见物质在最大质量中子星坍缩成黑洞(BHs)之前的EOS以及规范或2.1太阳质量NS的中心EOS。此外,我们发现NSs中的因果关系为压力与能量密度之比设定了一个约0.374的上界,并相应地为超致密物质中的痕量异常设定了一个下限。我们还证明,在独立于核EOS的大质量NS核中,强场重力在挤出声速平方(SSS)密度/半径剖面中的峰值方面起着基本作用。最后,概述了利用本文综述的新方法通过摄动求解无量纲TOV方程的NS研究的一些未来前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
The European Physical Journal A
The European Physical Journal A 物理-物理:核物理
CiteScore
5.00
自引率
18.50%
发文量
216
审稿时长
3-8 weeks
期刊介绍: Hadron Physics Hadron Structure Hadron Spectroscopy Hadronic and Electroweak Interactions of Hadrons Nonperturbative Approaches to QCD Phenomenological Approaches to Hadron Physics Nuclear and Quark Matter Heavy-Ion Collisions Phase Diagram of the Strong Interaction Hard Probes Quark-Gluon Plasma and Hadronic Matter Relativistic Transport and Hydrodynamics Compact Stars Nuclear Physics Nuclear Structure and Reactions Few-Body Systems Radioactive Beams Electroweak Interactions Nuclear Astrophysics Article Categories Letters (Open Access) Regular Articles New Tools and Techniques Reviews.
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