论文标题

测量从高级Ligo和高级处女座的第一和第二观测中的重力波的速度

Measuring the Speed of Gravitational Waves from the First and Second Observing Run of Advanced LIGO and Advanced Virgo

论文作者

Liu, Xiaoshu, He, Vincent F., Mikulski, Timothy M., Palenova, Daria, Williams, Claire E., Creighton, Jolien, Tasson, Jay D.

论文摘要

单个观察的重力波的速度可以通过用贝叶斯推断的重力波检测器之间的时间延迟来测量。然后可以组合多个测量值以产生更准确的结果。从源自GW170817/GRB 170817A的引力波和伽马射线的近乎同时检测中,发现引力速度的速度与伽马射线的速度相同,以$ 10^{15} $的速度相同。在这里,我们提出了一种不同的方法来测量引力波的速度,而不是基于相关的电磁信号,而是基于在地理上分离的检测器网络上测得的运输时间。尽管此方法的精确程度要差得多,但它提供了对重力波速度的独立测量。对于GW170817,通过将源的天空定位固定在电磁对应物上,引力波的速度约束至90%置信区间(0.97c,1.02c),其中C是空间中的光速。通过将七个BBH事件和BNS事件梳理,从第二次观察的Ligo和Advanced处女座跑步,将90%的置信区间缩小到(0.97C,1.01c)。重力波速度的准确测量使我们能够测试相对论的一般理论。我们在重力标准模型扩展(SME)提供的测试框架内进一步解释了这些结果。在此过程中,我们在9个非差异,非分散性系数中的4个同时限制了lorentz违反SME重力部门的洛伦兹,并将限制放在重力速度的各向异性上。

The speed of gravitational waves for a single observation can be measured by the time delay among gravitational-wave detectors with Bayesian inference. Then multiple measurements can be combined to produce a more accurate result. From the near simultaneous detection of gravitational waves and gamma rays originating from GW170817/GRB 170817A, the speed of gravitational wave signal was found to be the same as the the speed of the gamma rays to approximately one part in $10^{15}$. Here we present a different method of measuring the speed of gravitational waves, not based on an associated electromagnetic signal but instead by the measured transit time across a geographically separated network of detectors. While this method is far less precise, it provides an independent measurement of the speed of gravitational waves. For GW170817 a binary neutron star inspiral observed by Advanced LIGO and Advanced Virgo, by fixing sky localization of the source at the electromagnetic counterpart the speed of gravitational waves is constrained to 90% confidence interval (0.97c, 1.02c), where c is the speed of light in a vacuum. By combing seven BBH events and the BNS event from the second observing run of Advanced LIGO and Advanced Virgo, the 90% confidence interval is narrowed down to (0.97c, 1.01c). The accurate measurement of the speed of gravitational waves allows us to test the general theory of relativity. We further interpret these results within the test framework provided by the gravitational Standard-Model Extension (SME). In doing so, we obtain simultaneous constraints on 4 of the 9 nonbirefringent, nondispersive coefficients for Lorentz violation in the gravity sector of the SME and place limits on the anisotropy of the speed of gravity.

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