论文标题

用于任意观察者和空间的零射线沿空射线的演变

Evolution of the electric field along null rays for arbitrary observers and spacetimes

论文作者

Santana, Lucas T., Lobato, João C., Matos, Isabela S., Calvão, Maurício O., Reis, Ribamar R. R.

论文摘要

We derive, in a manifestly covariant and electromagnetic gauge independent way, the evolution law of the electric field $E^α= Ee^α (e^αe_α=1)$, relative to an arbitrary set of instantaneous observers along a null geodesic ray, for an arbitrary Lorentzian spacetime, in the geometrical optics limit of Maxwell's equations in vacuum.我们表明,通常,电场的幅度$ e $或方向$ e^α$(在这里解释为观察到的光的偏振)既不是沿射线的平行运输的。对于围绕给定的灯光射线的扩展参考框架,我们就框架的运动学方向表达了方向$ e^α$的演变,从而证明其扩展永远不会破坏平行运输,这对宇宙学源的内在特性无公正地推断,例如,例如,例如,宇宙学领域(例如,casmic Microwave背景)(CMB)。作为新得出的定律的应用,我们考虑了重力波(GW)干涉仪的简单设置,表明尽管GW诱导了(运动学上的)剪切,但最终干扰模式的变化却可以忽略不计,因为事实证明是GW和Laser频率的比例。

We derive, in a manifestly covariant and electromagnetic gauge independent way, the evolution law of the electric field $E^α= Ee^α (e^αe_α=1)$, relative to an arbitrary set of instantaneous observers along a null geodesic ray, for an arbitrary Lorentzian spacetime, in the geometrical optics limit of Maxwell's equations in vacuum. We show that, in general, neither the magnitude $E$ nor the direction $e^α$ of the electric field (here interpreted as the observed polarization of light) are parallel transported along the ray. For an extended reference frame around the given light ray, we express the evolution of the direction $e^α$ in terms of the frame's kinematics, proving thereby that its expansion never spoils parallel transport, which bears on the unbiased inference of intrinsic properties of cosmological sources, such as, for instance, the polarization field of the cosmic microwave background (CMB). As an application of the newly derived laws, we consider a simple setup for a gravitational wave (GW) interferometer, showing that, despite the (kinematic) shear induced by the GW, the change in the final interference pattern is negligible since it turns out to be of the order of the ratio of the GW and laser frequencies.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源