Universal relations and finite temperature neutron stars

P. Laskos-Patkos, P. Koliogiannis, A. Kanakis-Pegios, C. Moustakidis
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Abstract

In the past few years, a lot of studies devoted to the discovery of universal relations (equation of state independent relations). The significance of such expressions can be understood if we consider that they offer the opportunity for testing general relativity in a way that is independent of the nuclear equation of state and they also allow us to impose constraints on the structure of neutron stars. The aim of this work is twofold. Firstly, we wish to clarify if hot equations of state are able to reproduce established universal relations. Secondly, we investigate a possible universal connection between the binding energy and the dimensionless tidal deformability of a neutron star. These two bulk properties are associated with two very important candidates for multimessenger signals, binary neutron star mergers and supernova explosions. We find that the predictions of hot equations of state do not agree with the predictions from accepted universal relations. Subsequently,  the use of universal relations, when thermal effects are present, may be erroneous. Additionally, we find that, for moderate neutron star masses, the binding energy and the dimensionless tidal deformability of a neutron star satisfy a universal relation. The latter allows us to impose constraints on the binding energy of 1.4 Msun neutron star, using information from the analysis of the GW170817 event. Finally, we are able to present a universal relation between the compactness, the binding energy and the dimensionless tidal deformability, which is independent of the employed equation of state for zero and finite temperature.
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宇宙关系与有限温度中子星
在过去的几年里,大量的研究致力于发现普遍关系(状态无关关系方程)。如果我们考虑到它们提供了以一种独立于核状态方程的方式检验广义相对论的机会,并且它们还允许我们对中子星的结构施加约束,那么这些表达式的意义就可以理解了。这项工作的目的是双重的。首先,我们希望澄清热状态方程是否能够再现已建立的普遍关系。其次,我们研究了中子星的结合能与无因次潮汐变形之间可能存在的普遍联系。这两种体积性质与两个非常重要的多信使信号候选者,双中子星合并和超新星爆炸有关。我们发现热状态方程的预测与公认的普遍关系的预测不一致。因此,当热效应存在时,使用普遍关系可能是错误的。此外,我们发现,对于中等中子星质量,中子星的结合能和无因次潮汐变形能力满足普遍关系。后者允许我们利用GW170817事件的分析信息对1.4 Msun中子星的结合能施加约束。最后,我们能够给出紧度、结合能和无因次潮汐变形能力之间的普遍关系,该关系与所采用的零温度和有限温度状态方程无关。
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