论文标题
用二进制合并的完整合并前和合并后重力波信号探测中子星
Probing neutron stars with the full pre-merger and post-merger gravitational wave signal from binary coalescences
论文作者
论文摘要
在两个中子星的聚结期间发出的重力波信号带有有关恒星内部结构的信息。在长的灵感阶段,可观察到的主要物质是二元组分之间的潮汐相互作用,这种效应可以用紧凑型二元溶液对一般相对论进行参数建模。二进制合并后,主要可观察到的是残余的频率模式,最常见的是仅通过数值模拟才能访问短期信号。相关频率中,复杂的形态和降低的检测器灵敏度当前阻碍了合并后信号的检测,并激发了合并前和合并后数据的单独分析。但是,计划和正在进行的检测器的改进可能很快就可以使合并后信号达到范围。在这项研究中,我们针对整个合并前和合并后信号,而无需在二进制合并时进行人工分离。我们构建了一个混合分析,该分析基于分析计算,用模板对灵感进行建模,并校准数值相对论和合并后信号,并具有灵活的形态无关分析。正如预期的那样,将此分析应用于GW170817,我们发现合并后信号仍未被发现。我们进一步研究了模拟信号,发现我们可以重建完整的信号,并同时估算合并前的潮汐变形和合并后信号频率含量。我们的分析使我们能够使用所有可用数据研究中子星形物理学,并直接测试合并前和合并后信号的一致性,从而探测效果,例如强子Quark相变的发作。
The gravitational wave signal emitted during the coalescence of two neutron stars carries information about the stars' internal structure. During the long inspiral phase the main matter observable is the tidal interaction between the binary components, an effect that can be parametrically modeled with compact-binary solutions to General Relativity. After the binary merger the main observable is frequency modes of the remnant, most commonly giving rise to a short-duration signal accessible only through numerical simulations. The complicated morphology and the decreasing detector sensitivity in the relevant frequencies currently hinder detection of the post-merger signal and motivate separate analyses for the pre-merger and post-merger data. However, planned and ongoing detector improvements could soon put the post-merger signal within reach. In this study we target the whole pre-merger and post-merger signal without an artificial separation at the binary merger. We construct a hybrid analysis that models the inspiral with templates based on analytical calculations and calibrated to numerical relativity and the post-merger signal with a flexible morphology-independent analysis. Applying this analysis to GW170817 we find, as expected, that the post-merger signal remains undetected. We further study simulated signals and find that we can reconstruct the full signal and simultaneously estimate both the pre-merger tidal deformation and the post-merger signal frequency content. Our analysis allows us to study neutron star physics using all the data available and directly test the pre-merger and post-merger signal for consistency thus probing effects such as the onset of the hadron-quark phase transition.