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Pointing, Acquisition, and Tracking architecture tools for Deep-Space Optical Communications

机译:用于深空光通信的指向,采集和跟踪架构工具

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摘要

Deep-Space Optical Communications is a key emerging technology that is being pursued for high data-rate communications, which may enable rates up to ten times more than current Ka-band technology. Increasing the frequency of communication, from Ka-band to optical, allows for a higher data rate transfers. However, as the frequency of communication increases, the beam divergence decreases. Less beam divergence requires more accurate and precise pointing to make contact with the receiver. This would require a three-order-of-magnitude improvement from Ka-Band (~ 1 mrad) to optical (~ 1 urad) in the required pointing. Finding an architecture that can provide the necessary pointing capability is driven by many factors, such as allocated signal loss due to pointing, range to Earth, spacecraft disturbance profile, spacecraft base pointing capability, isolation scheme, and detector characteristics. We have developed a suite of tools to 1) flow down a set of pointing requirements (Error Budget Tool), 2) determine a set of architectures capable of meeting the requirements (Pointing Architecture Tool), and 3) assess the performance of possible architecture over the mission trajectory (Systems Engineering Tool). This paper describes the three tools and details their use through the case study of the Asteroid Retrieval Mission. Finally, this paper details which aspects of the pointing, acquisition, and tracking subsystem still require technology infusion, and the future steps needed to implement these pointing architectures.
机译:深空光通信是正在寻求用于高数据速率通信的一项关键新兴技术,该技术可能使速率高达当前Ka波段技术的十倍。从Ka频段到光纤的通信频率不断增加,从而可以实现更高的数据速率传输。但是,随着通信频率的增加,光束的发散度减小。较小的光束发散度需要更准确和精确的指向以与接收器接触。这将需要从Ka-Band(〜1 mrad)到所需指向中的光学(〜1 urad)的三个数量级的改进。寻找一种可以提供必要指向能力的架构受许多因素的驱动,例如由于指向而分配的信号损耗,对地范围,航天器干扰概况,航天器基本指向能力,隔离方案和检测器特性。我们开发了一套工具,以:1)降低一组指向要求(错误预算工具),2)确定一组能够满足要求的体系结构(指向体系结构工具),以及3)评估可能的体系结构的性能在任务轨迹上(系统工程工具)。本文介绍了这三种工具,并通过小行星检索任务的案例研究详细介绍了它们的使用。最后,本文详细介绍了指向,获取和跟踪子系统的哪些方面仍需要技术注入,以及实现这些指向体系结构所需的未来步骤。

著录项

  • 来源
  • 会议地点 San Francisco CA(US)
  • 作者单位

    NASA Jet Propulsion Laboratory / California Institute of Technology, 4800 Oak Grove Drive, Pasadena, CA, USA 91109;

    NASA Jet Propulsion Laboratory / California Institute of Technology, 4800 Oak Grove Drive, Pasadena, CA, USA 91109;

    NASA Jet Propulsion Laboratory / California Institute of Technology, 4800 Oak Grove Drive, Pasadena, CA, USA 91109;

    NASA Jet Propulsion Laboratory / California Institute of Technology, 4800 Oak Grove Drive, Pasadena, CA, USA 91109;

    NASA Jet Propulsion Laboratory / California Institute of Technology, 4800 Oak Grove Drive, Pasadena, CA, USA 91109;

    NASA Jet Propulsion Laboratory / California Institute of Technology, 4800 Oak Grove Drive, Pasadena, CA, USA 91109;

    NASA Jet Propulsion Laboratory / California Institute of Technology, 4800 Oak Grove Drive, Pasadena, CA, USA 91109;

    NASA Jet Propulsion Laboratory / California Institute of Technology, 4800 Oak Grove Drive, Pasadena, CA, USA 91109;

    NASA Jet Propulsion Laboratory / California Institute of Technology, 4800 Oak Grove Drive, Pasadena, CA, USA 91109;

    NASA Jet Propulsion Laboratory / California Institute of Technology, 4800 Oak Grove Drive, Pasadena, CA, USA 91109;

    NASA Jet Propulsion Laboratory / California Institute of Technology, 4800 Oak Grove Drive, Pasadena, CA, USA 91109;

    NASA Jet Propulsion Laboratory / California Institute of Technology, 4800 Oak Grove Drive, Pasadena, CA, USA 91109;

    NASA Jet Propulsion Laboratory / California Institute of Technology, 4800 Oak Grove Drive, Pasadena, CA, USA 91109;

    NASA Jet Propulsion Laboratory / California Institute of Technology, 4800 Oak Grove Drive, Pasadena, CA, USA 91109;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Deep space optical communications; pointing acquisition and tracking;

    机译:深空光通信;指向获取和跟踪;

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