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Visual attitude propagation for small satellites.

机译:小型卫星的视觉姿态传播。

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摘要

As electronics become smaller and more capable, it has become possible to conduct meaningful and sophisticated satellite missions in a small form factor. However, the capability of small satellites and the range of possible applications are limited by the capabilities of several technologies, including attitude determination and control systems. This dissertation evaluates the use of image-based visual attitude propagation as a compliment or alternative to other attitude determination technologies that are suitable for miniature satellites. The concept lies in using miniature cameras to track image features across frames and extracting the underlying rotation.; The problem of visual attitude propagation as a small satellite attitude determination system is addressed from several aspects: related work, algorithm design, hardware and performance evaluation, possible applications, and on-orbit experimentation. These areas of consideration reflect the organization of this dissertation.;A "stellar gyroscope" is developed, which is a visual star-based attitude propagator that uses relative motion of stars in an imager's field of view to infer the attitude changes. The device generates spacecraft relative attitude estimates in three degrees of freedom. Algorithms to perform the star detection, correspondence, and attitude propagation are presented. The Random Sample Consensus (RANSAC) approach is applied to the correspondence problem to successfully pair stars across frames while mitigating falsepositive and false-negative star detections. This approach provides tolerance to the noise levels expected in using miniature optics and no baffling, and the noise caused by radiation dose on orbit. The hardware design and algorithms are validated using test images of the night sky. The application of the stellar gyroscope as part of a CubeSat attitude determination and control system is described. The stellar gyroscope is used to augment a MEMS gyroscope attitude propagation algorithm to minimize drift in the absence of an absolute attitude sensor.;The stellar gyroscope is a technology demonstration experiment on KySat-2, a 1-Unit CubeSat being developed in Kentucky that is in line to launch with the NASA ELaNa CubeSat Launch Initiative. It has also been adopted by industry as a sensor for CubeSat Attitude Determination and Control Systems (ADCS).;KEYWORDS: Small Satellites, Attitude Determination, Egomotion Estimation, RANSAC, Image Processing.
机译:随着电子设备变得越来越小,功能越来越强大,以小巧的形式执行有意义且复杂的卫星任务成为可能。但是,小型卫星的能力和可能的应用范围受到包括姿态确定和控制系统在内的几种技术的能力的限制。本文评估了基于图像的视觉姿态传播作为对其他适合小型卫星的姿态确定技术的补充或替代。该概念在于使用微型相机跟踪整个帧的图像特征并提取潜在的旋转。从几个方面解决了作为小型卫星姿态确定系统的视觉姿态传播问题:相关工作,算法设计,硬件和性能评估,可能的应用以及在轨实验。这些考虑的领域反映了本文的结构。开发了“星状陀螺仪”,它是一种基于视觉恒星的姿态传播器,它利用成像器视场中恒星的相对运动来推断姿态变化。该设备以三个自由度生成航天器的相对姿态估计。提出了执行恒星检测,对应和姿态传播的算法。随机样本共识(RANSAC)方法被应用于对应问题,以成功地跨帧将星配对,同时减轻了假阳性和假阴性恒星检测。这种方法可提供对使用微型光学器件时所期望的噪声水平的容忍度,并且不会造成任何干扰,以及由轨道上的辐射剂量引起的噪声。使用夜空的测试图像验证了硬件设计和算法。描述了将恒星陀螺仪作为CubeSat姿态确定和控制系统的一部分的应用。恒星陀螺仪用于增强MEMS陀螺仪的姿态传播算法,以在没有绝对姿态传感器的情况下最大程度地减少漂移。;恒星陀螺仪是在KySat-2上进行的技术演示实验,KySat-2是在肯塔基州开发的一种1单位立方体卫星。与NASA ELaNa CubeSat发射计划一起发射。它也已被工业界用作CubeSat姿态确定和控制系统(ADCS)的传感器。关键词:小型卫星,姿态确定,自我估计,RANSAC,图像处理。

著录项

  • 作者

    Rawashdeh, Samir A.;

  • 作者单位

    University of Kentucky.;

  • 授予单位 University of Kentucky.;
  • 学科 Electrical engineering.;Aerospace engineering.;Engineering.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 120 p.
  • 总页数 120
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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