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Slowly rotating anisotropic neutron stars in general relativity and scalar-tensor theory

机译:一般相对性和标量张量理论的慢慢旋转各向异性中子恒星

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Some models (such as the Skyrme model, a low-energy effective field theory for quantum chromodynamics) suggest that the high-density matter prevailing in neutron star (NS) interiors may be significantly anisotropic. Anisotropy is known to affect the bulk properties of nonrotating NSs in general relativity (GR). In this paper we study the effects of anisotropy on slowly rotating stars in GR. We also consider one of the most popular extensions of Einstein's theory, namely scalar-tensor theories allowing for spontaneous scalarization (a phase transition similar to spontaneous magnetization in ferromagnetic materials). Anisotropy affects the moment of inertia of NSs (a quantity that could potentially be measured in binary pulsar systems) in both theories. We find that the effects of scalarization increase (decrease) when the tangential pressure is bigger (smaller) than the radial pressure, and we present a simple criterion to determine the onset of scalarization by linearizing the scalar-field equation. Our calculations suggest that binary pulsar observations may constrain the degree of anisotropy or even, more optimistically, provide evidence for anisotropy in NS cores.
机译:一些模型(例如Skyrme模型,量子色动力学的低能量有效场理论)表明中子星(NS)内部中的高密度物质可能是显着的各向异性的。已知各向异性影响通用相对性(GR)中非调节NSS的堆积性质。在本文中,我们研究各向异性对GR缓慢旋转星星的影响。我们还考虑了爱因斯坦理论最受欢迎的延伸之一,即允许自发标量化的标量张量理论(一个相交与铁磁性材料中的自发磁化)。各向异性影响两个理论中NSS惯性的惯性矩(可能在二元脉冲系统中测量的量)。我们发现,当切向压力比径向压力更大(更小)时,通过线性化标量场方程,我们提出了一种简单的标准,通过线性化,呈现比例增加(减小)的效果。我们的计算表明,二元脉冲条观察可能会限制各向异性或甚至更乐观地,为NS核心的各向异性提供证据。

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