论文标题

重力微透镜时间延迟在高光学深度:图像平均值和快速无线电爆发的时间特性

Gravitational Microlensing Time Delays at High Optical Depth: Image Parities and the Temporal Properties of Fast Radio Bursts

论文作者

Lewis, Geraint F.

论文摘要

由于引力势和路径长度的不同,重力透镜会导致源的多个图像之间的时间延迟,该图像对于太阳质量对象而言,$ \ sim10^{ - 5} $秒。如果通过具有高光泽度质量的光学深度的区域观察到天体物理紧凑的源,例如快速无线电爆发(FRB),则可以在短时间瞬态信号上印刷此引力镜头时间延迟。在本文中,我们考虑了宏观图像的均衡对产生的微透镜延迟的影响。发现这种奇偶校验直接印在微透明信号上,在到达表面的最小值时形成了宏观图像,从最高度放大的微映射开始,然后发展为轻率的微映射。在到达时间表的最大值处的宏观图像上,这种情况被逆转,首先观察到了淡淡的图像,并以最亮的微图像结束。对于鞍点处的宏观映像,信号再次以淡淡的图像开始,然后是更明亮的图像,然后再次逐渐逐渐逐渐逐渐逐渐通过微图像。宇宙学上不断增长的瞬态瞬态源源无疑会导致发现强透明的,乘成像的FRB,这将易受紧凑型质量的微透明。随着时间分辨率提供了我的现代化和未来的设施,对微透镜诱导的时间延迟的检测将揭示引力镜头宏观图像的奇偶,从而对大量质体质量模型提供了其他限制,并提高了这些短暂的源源物作为宇宙学探测器的功效。

Due to differing gravitational potentials and path lengths, gravitational lensing induces time delays between multiple images of a source which, for solar mass objects, is of order $\sim10^{-5}$ seconds. If an astrophysically compact source, such as a Fast Radio Burst (FRB), is observed through a region with a high optical depth of such microlensing masses, this gravitational lensing time delay can be imprinted on short timescale transient signals. In this paper, we consider the impact of the parity of the macroimage on the resultant microlensing time delays. It is found that this parity is directly imprinted on the microlensing signal, with macroimages formed at minima of the time arrival surface beginning with the most highly magnified microimages and then progressing to the fainter microimages. At macroimages at the maxima of the time arrival surface, this situation is reversed, with fainter images observed first and finishing with the brightest microimages. For macroimages at saddle-points, the signal again begins with fainter images, followed by brighter images before again fading through the fainter microimages. The growing populations of cosmologically distant bursty transient sources will undoubtedly result in the discovery of strong lensed, multiply imaged FRBs, which will be susceptible to microlensing by compact masses. With the temporal resolution being offered my modern and future facilities, the detection of microlensing induced time delays will reveal the parities of the gravitational lens macroimages, providing additional constraints on macrolensing mass models and improving the efficacy of these transient sources as a cosmological probes.

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