论文标题

引力波的强重力透镜的相位影响

Phase effects from strong gravitational lensing of gravitational waves

论文作者

Ezquiaga, Jose María, Holz, Daniel E., Hu, Wayne, Lagos, Macarena, Wald, Robert M.

论文摘要

评估两个或多个重力波(GWS)的概率是相同源的镜头图像,需要了解图像属性,包括它们在强镜头(SL)中的相对相移。对于以四极辐射为主的非衰减的圆形二进制文件,这些相位移位是随着聚结相的变化或检测器的变化而退化的,方向角度的倾斜度依赖性转移。这种退化因$ | m | \ ne 2 $在前者和$ | m |的存在而破坏了这种退化。 \ ne l $在后者中。进度或偏心率也会打破这种堕落。这意味着镜头GWS不一定与一般相对论(GR)的(删除)预测一定是一致的。因此,与EM镜头不同,GW SL可以导致具有可观察到的相位演化的图像。但是,对于宽的参数空间,镜头波形足够与发出的波形相似,检测管道仍然可以找到它。对于目前的探测器,依赖检测器依赖性方向角度的模板的质量比的SNR差异小于$ 1 \%$ $,在20Hz时为0.5的预进时间参数少于0.5 $ 5 \%$。与替代探测器的合并相移相位,不匹配低于$ 10 \%$。尽管如此,对于大声的来源,即使有一个图像,也可以将其直接从其非GR波形中直接识别为SL图像。在更极端的情况下,镜头可能会导致相当大的扭曲,并且镜头GWS可能会被当前的搜索未发现。然而,始终可以构造具有傅立叶空间相移的精确模板以适合任何镜头GW。我们得出的结论是,最佳搜索策略将在各个阶段纳入相位信息,并在对多个镜头事件的可能性的最终评估中进行精确处理。

Assessing the probability that two or more gravitational waves (GWs) are lensed images of the same source requires an understanding of the image properties, including their relative phase shifts in strong lensing (SL). For non-precessing, circular binaries dominated by quadrupole radiation these phase shifts are degenerate with either a shift in the coalescence phase or a detector and inclination dependent shift in the orientation angle. This degeneracy is broken by the presence of higher harmonic modes with $|m|\ne 2$ in the former and $|m| \ne l$ in the latter. Precession or eccentricity will also break this degeneracy. This implies that lensed GWs will not necessarily be consistent with (unlensed) predictions from general relativity (GR). Therefore, unlike EM lensing, GW SL can lead to images with an observable modified phase evolution. However, for a wide parameter space, the lensed waveform is similar enough to an unlensed waveform that detection pipelines will still find it. For present detectors, templates with a shifted detector-dependent orientation angle have SNR differences of less than $1\%$ for mass ratios up to 0.1, and less than $5\%$ for precession parameters up to 0.5 and eccentricities up to 0.4 at 20Hz. The mismatch is lower than $10\%$ with the alternative detector-independent coalescence phase shift. Nonetheless, for a loud enough source, even with one image it may be possible to directly identify it as a SL image from its non-GR waveform. In more extreme cases, lensing may lead to considerable distortions, and the lensed GWs may be undetected with current searches. Nevertheless, an exact template with a phase shift in Fourier space can always be constructed to fit any lensed GW. We conclude that an optimal search strategy would incorporate phase information in all stages, with an exact treatment in the final assessment of the probability of multiple lensed events.

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