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Navigation and Control for Autonomous Spacecraft Proximity Operations with Uncooperative Satellites

Navigation and Control for Autonomous Spacecraft Proximity Operations with Uncooperative Satellites
非合作卫星自主航天器接近操作的导航和控制
批准号:
RGPIN-2014-03825
负责人:
Ulrich, Steve
金额:
$1.68万
依托单位:
依托单位国家:
加拿大
项目类别:
Discovery Grants Program - Individual
财政年份:
2015
资助国家:
加拿大
项目状态:
已结题
起止时间:
2015-01-01 至 2016-12-31

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中文摘要
翻译
-在轨维修的重要性 今天,卫星被用于许多不同的应用,如遥感、全球导航和科学研究。它们还提供实时的全球通信,包括广播、电话、互联网和电视。在固话通讯和宽带互联网能力仅限于不存在的偏远地区,如加拿大北部,卫星电话和基于卫星的互联网连接是唯一的通信手段。最近的一项研究确定,未来10年将发射1200多颗卫星,这些卫星的制造和实施收入预计将达到1940亿美元。虽然大多数将不会出现重大问题,但统计数据预测,少数但相当多的人将经历不同严重程度的在轨异常或故障,给政府和私营组织造成数十亿美元的损失。正如许多研究所表明的那样,在维修航天器的轨道上维修损坏或故障的卫星可以节省大量费用。 -技术挑战 在轨服务要求服务者航天器执行具有挑战性的接近操作,例如用于交会和对接的目视检查和相对运动控制。为了使这些近距离行动可行,必须提高导航和控制能力,这意味着大大提高自主性,以及高精度的相对导航和轨迹控制。这些挑战在实际情况下更加复杂,因为由于机械或电气故障或燃料耗尽,要维修的卫星很可能不合作,因为它可能以未知的角速度旋转,没有通信能力,形状不确定,或具有未知的物理参数(质量和质量惯性矩)。此外,未建模的轨道摄动可能会干扰航天器的相对运动,从而影响安全执行准确机动的能力。 -目标和建议 在这方面,这项研究的主要目标是开发智能导航和控制系统,使航天器能够自主地与不合作的卫星进行近距离操作,从而推进在轨服务技术。具体地说,将提出基于立体摄像机的视觉相对导航技术,并将其与创新的自适应控制理论相结合。这些系统将在现有的航天器近距离作业设施进行实验验证,该设施由两个小型压缩空气推进的航天器平台组成,可以在实验室环境中确定和控制它们的相对运动。 -给加拿大带来的成果和好处 这一研究计划的成果将是一套指导方针和工具,使航天器设计者能够为近距离航天器开发最先进的导航和控制系统。拟议的计划将提高自主性、更安全的操作、更快的响应时间、更高的运动控制精度和增强的在轨维修任务的健壮性。这反过来将增加这些系统的能力,并使不合作卫星的在轨服务成为可能。鉴于加拿大对这种复杂的空间作业的兴趣与日俱增,这项研究将使加拿大的空间组织处于这些技术的前沿,处于全球空间市场的这一利基市场。作为一个额外的好处,所开发的技术将适用于其他与航空航天相关的问题,包括与无人机相关的问题。
英文摘要
- Importance of On-Orbit Servicing Today, satellites are being used for many different applications, such as remote sensing, global navigation and scientific research. They also provide provide real-time, worldwide communication, including radio, telephone, internet, and television. In remote regions where landline telecommunication and broadband internet capabilities are limited to non-existent, such as Northern Canada, satellite phones and satellite-based internet connections are the only means of communication. A recent study determined that more than 1,200 satellites will be launched over the next 10 years, and revenues from the manufacture and implementation of these satellites is expected to reach $194 billion. While most will perform without major problems, statistics predict that a small but significant number will experience on-orbit anomalies or failures of various severity, resulting in losses of billions of dollars for governments and private organizations. As demonstrated by numerous studies, servicing damaged or failed satellites while in orbit with servicer spacecraft could achieve substantial savings. - Technical Challenges On-orbit servicing requires the servicer spacecraft to perform challenging proximity operations, such as visual inspection and relative motion control for rendezvous and docking. To make these proximity operations feasible, the navigation and control capabilities must be improved over traditional single-satellite missions, which means significantly increased autonomy, and highly accurate relative navigation and trajectory control. These challenges are further complicated in practical situations because, due to mechanical or electrical failures, or fuel depletion, the satellite to be serviced will likely be uncooperative, in the sense that it could be rotating at an unknown angular rate, have no communication capabilities, be of an uncertain shape, or have unknown physical parameters (mass and mass moments of inertia). Moreover, un-modeled orbital perturbations can disturb the relative motion of the spacecraft, thus impacting the capability to perform accurate maneuvers safely. - Objectives and Proposal In this context, the main objective of this research is to develop intelligent navigation and control systems enabling autonomous spacecraft proximity operations with uncooperative satellites, thereby advancing on-orbit servicing technologies. Specifically, vision-based relative navigation techniques relying on stereo cameras, to be merged with innovative adaptive control theories, will be proposed. These systems will be experimentally validated at the existing Spacecraft Proximity Operations facility, which consists of two small compressed air-propelled spacecraft platforms that can determine and control their relative motion in a laboratory environment. - Outcome and Benefits to Canada The outcome of this research program will be a set of guidelines and tools that enable spacecraft designers to develop the most advanced navigation and control systems for spacecraft in close proximity. The proposed program will lead to increased autonomy, safer operations, faster response times, higher motion control accuracy and enhanced robustness of on-orbit servicing missions. This, in turn, will increase the capabilities of these systems, and make on-orbit servicing of uncooperative satellites feasible. Given the increasing interests in such complex space operations in Canada, this research will place Canadian space organizations at the forefront of these technologies, in this niche of the global space market. As an added benefit, the techniques developed will have application to other aerospace-related problems, including those related to unmanned aerial vehicles.
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Autonomous Spacecraft Proximity Operations with Uncooperative Resident Space Objects
  • 批准号:
    RGPIN-2020-07243
  • 项目类别:
    Discovery Grants Program - Individual
  • 资助金额:
    $1.97万
  • 财政年份:
    2022
  • 负责人:
    Ulrich, Steve
  • 依托单位:
Autonomous Spacecraft Proximity Operations with Uncooperative Resident Space Objects
  • 批准号:
    RGPIN-2020-07243
  • 项目类别:
    Discovery Grants Program - Individual
  • 资助金额:
    $1.97万
  • 财政年份:
    2021
  • 负责人:
    Ulrich, Steve
  • 依托单位:
Autonomous Spacecraft Proximity Operations with Uncooperative Resident Space Objects
  • 批准号:
    RGPIN-2020-07243
  • 项目类别:
    Discovery Grants Program - Individual
  • 资助金额:
    $1.97万
  • 财政年份:
    2020
  • 负责人:
    Ulrich, Steve
  • 依托单位:
Navigation and Control for Autonomous Spacecraft Proximity Operations with Uncooperative Satellites
  • 批准号:
    RGPIN-2014-03825
  • 项目类别:
    Discovery Grants Program - Individual
  • 资助金额:
    $1.68万
  • 财政年份:
    2019
  • 负责人:
    Ulrich, Steve
  • 依托单位:
国内基金
海外基金
Cortical control of internal state in the insular cortex-claustrum region