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Preliminary Design of a Smart Composite Telescope for Space Laser Communication on a Satellite for the Geosynchronous Orbit

机译:用于地球同步轨道卫星空间激光通信的智能复合望远镜的初步设计

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This paper presents a preliminary design of a smart composite telescope for space laser communication. The smart composite telescope will be mounted on a smart composite platform with Simultaneous Precision Positioning and Vibration Suppression (SPPVS), and then mounted on a satellite. The laser communication is intended for the Geosynchronous orbit. The high degree of directionality increases the security of the laser communication signal (as opposed to a diffused RF signal), but also requires sophisticated subsystems for transmission and acquisition. The shorter wavelength of the optical spectrum increases the data transmission rates, but laser systems require large amounts of power, which increases the mass and complexity of the supporting systems. In addition, the laser communication on the Geosynchronous orbit requires an accurate platform with SPPVS capabilities. Therefore, this work also addresses the design of an active composite platform to be used to simultaneously point and stabilize an inter-satellite laser communication telescope with micro-radian pointing resolution. The telescope is a Cassegrain receiver that employs two mirrors, one convex (primary) and the other concave (secondary). The distance, as well as the horizontal and axial alignment of the mirrors, must be precisely maintained or else the optical properties of the system will be severely degraded. The alignment will also have to be maintained during thruster firings, which will require vibration suppression capabilities of the system as well. The innovative platform has been designed to have tip-tilt pointing and simultaneous multi-degree-of-freedom vibration isolation capability for pointing stabilization.
机译:本文介绍了用于空间激光通信的智能复合望远镜的初步设计。智能复合望远镜将被安装在具有同步精确定位和减震(SPPVS)功能的智能复合平台上,然后将其安装在卫星上。激光通信旨在用于地球同步轨道。高度的方向性提高了激光通信信号的安全性(与扩散的RF信号相反),但是还需要复杂的子系统来进行传输和采集。光谱的较短波长增加了数据传输速率,但是激光系统需要大量的功率,这增加了支撑系统的质量和复杂性。此外,地球同步轨道上的激光通信需要具有SPPVS功能的精确平台。因此,这项工作还解决了有源复合平台的设计问题,该平台将用于同时指向和稳定具有微弧度指向分辨率的卫星间激光通信望远镜。望远镜是卡塞格林望远镜的接收器,它使用两个反射镜,一个是凸镜(主镜),另一个是凹镜(副镜)。必须精确地保持距离以及反射镜的水平和轴向对准,否则系统的光学性能将严重降低。在推进器点火期间还必须保持对准,这也将需要系统的振动抑制能力。创新平台的设计具有倾斜倾斜指向和同时的多自由度振动隔离功能,以实现指向稳定。

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