论文标题

在非线性方案中的一般相对性的测试:参数化的跌点 - 连接重 - 重力波形模型

Tests of general relativity in the nonlinear regime: a parametrized plunge-merger-ringdown gravitational waveform model

论文作者

Maggio, Elisa, Silva, Hector O., Buonanno, Alessandra, Ghosh, Abhirup

论文摘要

当身体的速度达到光速的很大一部分和重力波亮度峰值时,二进制黑色孔合并的跌落阶段为探测动力学和非线性方案中的重力提供了独特的机会。对二进制进化的这一阶段的其他重力理论中的一般相对性的预测与其他相对论的预测有何不同?为了解决这个问题,我们在有效的一体形式主义中开发了一个参数化的波形模型,该模型允许在陷入困境的阶段偏离一般相对性。作为第一步,我们专注于非必需的旋转,半圆形黑洞二进制文件。与以前的工作相比,对于每种引力波模式,我们的模型可以在一般相关预测,振幅峰,瞬时频率的瞬间以及峰值振幅值的瞬间修改。我们使用此波形模型来探索考虑合成数据注射和两个引力波信号的几个问题。特别是,我们发现,使用GW150914的偏离峰值引力波幅度和瞬时频率的偏差可能约束至$ 20 \%$。令人震惊的是,我们发现GW200129_065458表现出强烈侵犯一般相对论。我们将此结果解释为错误违规,要么是由于波形系统学(旋转进动的不构层),要么是由于数据质量问题,具体取决于对此事件的解释。这说明了使用参数化波形模型作为研究普通相对性中系统错误的工具。 GW200129_065458的结果也生动地证明了波形系统学和小故障缓解程序的重要性,当解释了与当前重力波观测的一般相对性测试时。

The plunge-merger stage of the binary-black hole coalescence, when the bodies' velocities reach a large fraction of the speed of light and the gravitational-wave luminosity peaks, provides a unique opportunity to probe gravity in the dynamical and nonlinear regime. How much do the predictions of general relativity differ from the ones in other theories of gravity for this stage of the binary evolution? To address this question, we develop a parametrized waveform model, within the effective-one-body formalism, that allows for deviations from general relativity in the plunge-merger-ringdown stage. As first step, we focus on nonprecessing-spin, quasicircular black hole binaries. In comparison to previous works, for each gravitational wave mode, our model can modify, with respect to general-relativistic predictions, the instant at which the amplitude peaks, the instantaneous frequency at this time instant, and the value of the peak amplitude. We use this waveform model to explore several questions considering both synthetic-data injections and two gravitational wave signals. In particular, we find that deviations from the peak gravitational wave amplitude and instantaneous frequency can be constrained to about $20\%$ with GW150914. Alarmingly, we find that GW200129_065458 shows a strong violation of general relativity. We interpret this result as a false violation, either due to waveform systematics (mismodeling of spin precession) or due to data-quality issues depending on one's interpretation of this event. This illustrates the use of parametrized waveform models as tools to investigate systematic errors in plain general relativity. The results with GW200129_065458 also vividly demonstrate the importance of waveform systematics and of glitch mitigation procedures when interpreting tests of general relativity with current gravitational wave observations.

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