论文标题

缓慢旋转中子星的动态引力潮汐的相对论有效作用

Relativistic effective action of dynamical gravitomagnetic tides for slowly rotating neutron stars

论文作者

Gupta, Pawan Kumar, Steinhoff, Jan, Hinderer, Tanja

论文摘要

二元灵感期间的潮汐效应会激发中子恒星的引力磁磁性正常模式,从而导致引力波信号中的潜在可测量作用。我们通过为重力磁动力学开发相对论的有效动作来阐明许多微妙的动力,将这些效果纳入波形模型中。在缓慢的旋转极限下工作,我们首先考虑牛顿后的近似,并明确从运动方程式获得有效的动作。我们证明,这种配方为计算模式频率开辟了一种方法,对相关物质变量产生洞察力,并阐明了在引力磁模式振幅的位移下流体特性的移位对称性的作用。然后,我们基于对称性和功率计数方案构建一个完全相对论的动作。该动作涉及四个耦合系数,这些系数取决于中子星的内部结构,并表征了引力波中印记的关键物质参数。我们表明,在通过归一化固定系数之一后,其他三个直接涉及两种引力磁性爱情数字(静态和无旋转)和模式频率。我们讨论了此动作的几个有趣的特征和动态后果,并分析频域响应函数(诱导的通量四极杆和外部引力磁场之间的频率依赖性比),以及代表时间域响应的相应爱情操作员。我们的结果为引导重力波天文学的重力磁效应及其编码的核物理学的精确预测提供了基础。

Gravitomagnetic quasi-normal modes of neutron stars are resonantly excited by tidal effects during a binary inspiral, leading to a potentially measurable effect in the gravitational-wave signal. We take an important step towards incorporating these effects in waveform models by developing a relativistic effective action for the gravitomagnetic dynamics that clarifies a number of subtleties. Working in the slow-rotation limit, we first consider the post-Newtonian approximation and explicitly derive the effective action from the equations of motion. We demonstrate that this formulation opens a way to compute mode frequencies, yields insights into the relevant matter variables, and elucidates the role of a shift symmetry of the fluid properties under a displacement of the gravitomagnetic mode amplitudes. We then construct a fully relativistic action based on the symmetries and a power counting scheme. This action involves four coupling coefficients that depend on the internal structure of the neutron star and characterize the key matter parameters imprinted in the gravitational waves. We show that, after fixing one of the coefficients by normalization, the other three directly involve the two kinds of gravitomagnetic Love numbers (static and irrotational), and the mode frequencies. We discuss several interesting features and dynamical consequences of this action, and analyze the frequency-domain response function (the frequency-dependent ratio between the induced flux quadrupole and the external gravitomagnetic field), and a corresponding Love operator representing the time-domain response. Our results provide the foundation for deriving precision predictions of gravitomagnetic effects, and the nuclear physics they encode, for gravitational-wave astronomy.

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