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Ground Receiver Unit for Optical Communication between LADEE Spacecraft and ESA Ground Station

机译:LADEE航天器与ESA地面站之间的光通信地面接收器单元

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NASA's Lunar Laser Communication Demonstration (LLCD) demonstrates optical communication between ground stations on Earth and NASA's LADEE spacecraft orbiting the Moon. As a contribution to the LLCD experiment, the European Space Agency (ESA) prepares its existing optical ground station to serve as a complementary ground communication terminal. A ground receiver unit was developed for this purpose. It comprises optical detectors and electronics to recover the frames, decode the data and store them in a large data buffer. The overall ground receiver unit design is presented and explained together with ground test activities. Different optical detectors had been evaluated and two detector types were chosen for implementation. A multimode fiber is used to couple the optical signal from the existing telescope into the detectors. The 16ary-Pulse Position Modulation (PPM) signal is then processed in the electronics. Clock recovery and frame synchronization could be shown to work reliably at low power and under severe power fluctuations. For error correction, a powerful 1/2-rate Serially Concatenated PPM (SCPPM) decoder is applied. The user data is decoded at a throughput of 39Mbps with up to 20 turbo iterations. With the developed ground receiver unit an average signal power of only a few hundred picowatts is required to yield a frame error rate smaller than 10~(-5). The ground receiver unit was tested for compatibility with NASA's ground support equipment and installed in ESA's Optical Ground Station on Tenerife. It was used in actual optical downlinks in October and November 2013. LLCD downlink results are presented and analyzed.
机译:NASA的月球激光通信演示(LLCD)演示了地球上的地面站与绕月球运行的NASA LADEE航天器之间的光通信。作为对LLCD实验的贡献,欧洲航天局(ESA)准备将其现有的光学地面站用作互补的地面通信终端。为此开发了一个地面接收器单元。它包括光学检测器和电子设备,用于恢复帧,解码数据并将其存储在大数据缓冲区中。介绍并解释了地面接收器的总体设计以及地面测试活动。已经评估了不同的光学探测器,并选择了两种探测器类型来实施。多模光纤用于将来自现有望远镜的光信号耦合到探测器中。然后在电子设备中处理16脉冲位置调制(PPM)信号。时钟恢复和帧同步可以证明在低功率和严重的功率波动下可靠地工作。为了进行纠错,应用了功能强大的1/2速率串行级联PPM(SCPPM)解码器。用户数据以39Mbps的吞吐量进行解码,最多可进行20次turbo迭代。使用已开发的地面接收器单元,仅需要几百皮瓦的平均信号功率即可产生小于10〜(-5)的帧错误率。地面接收器单元经过了与NASA地面支持设备的兼容性测试,并安装在特内里费岛ESA的光学地面站中。 2013年10月和2013年11月在实际的光学下行链路中使用了它。提出并分析了LLCD下行链路的结果。

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