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Gravitational-Wave Tests of General Relativity with Ground-Based Detectors and Pulsar-Timing Arrays

机译:相对论的引力波测试与地面探测器和脉冲星计时阵列的比较

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摘要

This review is focused on tests of Einstein’s theory of general relativity with gravitational waves that are detectable by ground-based interferometers and pulsar-timing experiments. Einstein’s theory has been greatly constrained in the quasi-linear, quasi-stationary regime, where gravity is weak and velocities are small. Gravitational waves will allow us to probe a complimentary, yet previously unexplored regime: the non-linear and dynamical strong-field regime. Such a regime is, for example, applicable to compact binaries coalescing, where characteristic velocities can reach fifty percent the speed of light and gravitational fields are large and dynamical. This review begins with the theoretical basis and the predicted gravitational-wave observables of modified gravity theories. The review continues with a brief description of the detectors, including both gravitational-wave interferometers and pulsar-timing arrays, leading to a discussion of the data analysis formalism that is applicable for such tests. The review ends with a discussion of gravitational-wave tests for compact binary systems.
机译:这篇评论的重点是用地面波干涉仪和脉冲星定时实验可检测到的爱因斯坦广义相对论与引力波的测试。爱因斯坦的理论已被极大地限制在准线性,准平稳状态下,那里的重力很弱,速度很小。引力波将使我们能够探究一种互补的,但以前尚未探索的机制:非线性和动态强场机制。例如,这种机制适用于紧凑的二进制合并,其中特征速度可以达到光速的50%,而重力场是大而动态的。这篇综述从修正的重力理论的理论基础和预测的重力波可观测性开始。回顾继续对检测器进行了简要描述,包括重力波干涉仪和脉冲星定时阵列,从而引起了对适用于此类测试的数据分析形式的讨论。本文以紧凑型二元系统的引力波测试为结尾。

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