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Results from the DOLCE (Deep Space Optical LinkCommunications Experiment) Project

机译:Dolce(深空光线链接实验)项目的结果

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Oerlikon Space AG has since 1995 been developing the OPTEL family of optical communications terminals. The optical terminals within the OPTEL family have been designed so as to be able to position Oerlikon Space for future opportunities open to this technology. These opportunities range from commercial optical satellite crosslinks between geostationary (GEO) satellites, deep space optical links between planetary probes and the Earth, as well as optical links between airborne platforms (either between the airborne platforms or between a platform and GEO satellite). The OPTEL terminal for deep space applications has been designed as an integrated RF-optical terminal for telemetry links between the science probe and Earth. The integrated architecture provides increased TM link capacities through the use of an optical link, while spacecraft navigation and telecommand are ensured by the classical RF link. The optical TM link employs pulsed laser communications operating at 1058nm to transmit data using PPM modulation to achieve a robust link to atmospheric degradation at the optical ground station. For deep space links from Lagrange (L1 / L2) data rates of 10 - 20 Mbps can be achieved for the same spacecraft budgets (mass and power) as an RF high gain antenna. Results of an inter-island test campaign to demonstrate the performance of the pulsed laser communications subsystem employing 32-PPM for links through the atmosphere over a distance of 142 km are presented. The transmitter of the communications subsystem is a master oscillator power amplifier (MOPA) employing a 1 W (average power) amplifier and the receiver a Si APD with a measured sensitivity of –70.9 dBm for 32-PPM modulation format at a user data rate of 10 Mbps and a bit error rate (BER) of 10~(-6).
机译:自1995年以来,Oerlikon Space AG已经开发了光学通信终端的光学系列。光学系列内的光学终端已经设计成能够将Oerlikon空间定位为未来的机会对此技术开放。这些机会范围从地球静止(地理)卫星之间的商业光学卫星交联,行星探针和地球之间的深空光链路,以及空中平台之间的光学链路(在机载平台之间或平台和地理卫星之间)。用于深度空间应用的光学终端被设计为用于科学探测和地球之间的遥测链路的集成RF光电终端。集成架构通过使用光链路提供增加的TM链路容量,而通过经典RF链路确保航天器导航和电信。光学TM链路采用脉冲激光通信在1058nm下操作,以使用PPM调制来传输数据,以实现光学接地站的稳健链接到大气降解。对于Lagrange(L1 / L2)的深空链路,可以为与RF高增益天线相同的航天器预算(质量和功率)来实现10-20 Mbps的数据速率。展示了岛间测试活动的结果,以证明采用32 ppm的脉冲激光通信子系统的性能通过大气在142km的距离上进行32 ppm。通信子系统的发射机是采用1W(平均功率)放大器和接收器SI APD的主振荡器功率放大器(MOPA),SI APD以用户数据速率为32-ppm调制格式的测量灵敏度为-70.9 dBm 10 Mbps和误码率(BER)为10〜(-6)。

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