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在494米自由空间传播中仅相位预补偿的实验验证。

Experimental validation of phase-only pre-compensation over 494  m free-space propagation.

作者信息

Brady Aoife, Berlich René, Leonhard Nina, Kopf Teresa, Böttner Paul, Eberhardt Ramona, Reinlein Claudia

出版信息

Opt Lett. 2017 Jul 15;42(14):2679-2682. doi: 10.1364/OL.42.002679.

Abstract

It is anticipated that ground-to-geostationary orbit (GEO) laser communication will benefit from pre-compensation of atmospheric turbulence for laser beam propagation through the atmosphere. Theoretical simulations and laboratory experiments have determined its feasibility; extensive free-space experimental validation has, however, yet to be fulfilled. Therefore, we designed and implemented an adaptive optical (AO)-box which pre-compensates an outgoing laser beam (uplink) using the measurements of an incoming beam (downlink). The setup was designed to approximate the baseline scenario over a horizontal test range of 0.5 km and consisted of a ground terminal with the AO-box and a simplified approximation of a satellite terminal. Our results confirmed that we could focus the uplink beam on the satellite terminal using AO under a point-ahead angle of 28 μrad. Furthermore, we demonstrated a considerable increase in the intensity received at the satellite. These results are further testimony to AO pre-compensation being a viable technique to enhance Earth-to-GEO optical communication.

摘要

预计地对地球静止轨道(GEO)激光通信将受益于对激光束在大气中传播时的大气湍流进行预补偿。理论模拟和实验室实验已经确定了其可行性;然而,广泛的自由空间实验验证尚未完成。因此,我们设计并实现了一个自适应光学(AO)箱,该箱利用对入射光束(下行链路)的测量对出射激光束(上行链路)进行预补偿。该装置的设计目的是在0.5公里的水平测试范围内近似基线场景,它由一个带有AO箱的地面终端和一个卫星终端的简化近似组成。我们的结果证实,在28微弧度的提前角下,我们可以使用自适应光学技术将上行链路光束聚焦到卫星终端上。此外,我们还证明了在卫星处接收到的强度有显著增加。这些结果进一步证明了自适应光学预补偿是一种增强地对地球静止轨道光通信的可行技术。

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