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Development Of Laser Beam Transmission Strategies For Future Ground-to-Space Optical Communications

机译:未来地面空间光通信激光束传输策略的开发

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Optical communications is a key technology to meet the bandwidth expansion required in the global information grid. High bandwidth bi-directional links between sub-orbital platforms and ground and space terminals can provide a seamless interconnectivity for rapid return of critical data to analysts. The JPL Optical Communications Telescope Laboratory (OCTL) is located in Wrightwood California at an altitude of 2.2.km. This 200 sq-m facility houses a state-of-the-art 1-m telescope and is used to develop operational strategies for ground-to-space laser beam propagation that include safe beam transmission through navigable air space, adaptive optics correction and multi-beam scintillation mitigation, and line of sight optical attenuation monitoring. JPL has received authorization from international satellite owners to transmit laser beams to more than twenty retro-reflecting satellites. This paper presents recent progress in the development of these operational strategies tested by narrow laser beam transmissions from the OCTL to retro-reflecting satellites. We present experimental results and compare our measurements with predicted performance for a variety of atmospheric conditions.
机译:光通信是一个关键技术,以满足全局信息网格中所需的带宽扩展。子轨道平台和地面和空间终端之间的高带宽双向链路可以提供无缝互连,以便快速返回到分析师的关键数据。 JPL光学通信望远镜实验室(Oct1)位于海拔2.2.km的赖特伍德加利福尼亚州。这座200平方米的设施包括最先进的1米望远镜,用于开发用于地下空间激光束传播的操作策略,包括通过可导航的空气空间,自适应光学校正和多重的安全光束传输-Beam闪烁缓解和视线光学衰减监测。 JPL已收到国际卫星业主的授权,以将激光束传输到20多个复古反射卫星。本文提出了最近通过从八十八格转向反射卫星测试的窄激光束传输测试的这些操作策略的进展。我们提出了实验结果,并将我们的测量结果与各种大气条件的预测性能进行了比较。

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