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Gravitomagnetic effects in the propagation of electromagnetic waves in variable gravitational fields of arbitrary-moving and spinning bodies

机译:在任意运动和旋转的物体的可变重力场中电磁波传播中的重力电磁效应

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摘要

Propagation of light in the gravitational field of self-gravitating spinning bodies moving with arbitrary velocities is discussed. The gravitational field is assumed to be "weak" everywhere. Equations of motion of a light ray are solved in the first post-Minkowskian approximation that is linear with respect to the universal gravitational constant $G$. We do not restrict ourselves with the approximation of gravitational lens so that the solution of light geodesics is applicable for arbitrary locations of source of light and observer. This formalism is applied for studying corrections to the Shapiro time delay in binary pulsars caused by the rotation of pulsar and its companion. We also derive the correction to the light deflection angle caused by rotation of gravitating bodies in the solar system (Sun, planets) or a gravitational lens. The gravitational shift of frequency due to the combined translational and rotational motions of light-ray-deflecting bodies is analyzed as well. We give a general derivation of the formula describing the relativistic rotation of the plane of polarization of electromagnetic waves (Skrotskii effect). This formula is valid for arbitrary translational and rotational motion of gravitating bodies and greatly extends the results of previous researchers. Finally, we discuss the Skrotskii effect for gravitational waves emitted by localized sources such as a binary system. The theoretical results of this paper can be applied for studying various relativistic effects in microarcsecond space astrometry and developing corresponding algorithms for data processing in space astrometric missions such as FAME, SIM, and GAIA.
机译:讨论了光在自重旋转体以任意速度运动时在重力场中的传播。重力场在任何地方都被认为是“弱”的。在第一个后Minkowskian近似中求解光线的运动方程,该近似值相对于万有引力常数$ G $是线性的。我们不局限于重力透镜的逼近,因此光测地线的解决方案适用于光源和观察者的任意位置。这种形式主义被用于研究对由脉冲星及其伴星的旋转引起的二元脉冲星的Shapiro时间延迟的校正。我们还推导了对由太阳系(太阳,行星)或引力透镜中的引力体旋转引起的光偏转角的校正。还分析了由于光线偏转体的平移和旋转运动相结合而引起的频率重力位移。我们给出了描述电磁波极化平面的相对论旋转的公式的一般推导(Skrotskii效应)。该公式对引力体的任意平移和旋转运动均有效,并大大扩展了先前研究人员的研究成果。最后,我们讨论了由诸如二元系统之类的局部源发出的引力波的Skrotskii效应。本文的理论结果可用于研究微秒空间天文测量中的各种相对论效应,并开发相应的算法来处理诸如FAME,SIM和GAIA等空间天文任务中的数据。

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