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AOCS DESIGN FOR NANOSATELLITE CONSTELLATIONS

机译:AOCS为纳米卫星星座设计

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Technology miniaturization and wide usage of nanosatcllites in the last decade has enabled nanosatel-lite capabilities to evolve to a new level, where they can be used for scientific experiments and commercial applications. Although technology miniaturization has increased the overall performance of nanosatellites, size and mass constraints often limit the satellite and its payload capabilities. Nanosatellitc constellations address the problem by fusing data from multiple small satellites to increase accuracy, or by dividing workload between small satellites. In addition, constellations of small satellites would revolutionize those research areas which benefit from global coverage, frequent revisits and closely spaced measurement points. Work distribution between multiple satellites requires active and accurate control over all of the satellites, thus one requires accurate orbit and attitude determination and control to effectively fuse data from multiple satellites. This work analyzes nanosatellite AOCS design differences between a single satellite and a satellite constellation. The main focus points for this paper will be to analyze AOCS requirements with different missions, the influence of these requirements on hardware and software design. Furthermore, this work uses real life experiences gained via the design process and lessons learned from the flight experience of Crystalspace. DelFFi. ESTCubc-1 and other relevant small -or nanosatellite ADCS/AOCS. Firstly, work on the requirements focuses on constraints that, constellations and formation flying introduces into AOCS design. To investigate how mission complexity affects AOCS requirements different mission scenarios (such as telecommunications in remote areas, natural disaster management etc.) will be analyzed. Secondly, the paper gives an overview of existing AOCS hardware designs and identifies the main design differences required by nanosatellite constellations. Furthermore, the relation of nanosatellite constellation AOCS hardware design to system software and specific requirements will be determined. In addition, the paper describes opportunities to improve existing AOCS design. Finally, the article defines the main differences between single nanosatellite and nanosatellite constellation AOCS software architecture and design. The focus will be on algorithms, design considerations, computational complexity and communication issues.
机译:在过去十年中,技术小型化和广泛使用纳米载物素,使纳米轿车的能力能够发展到新的水平,在那里它们可用于科学实验和商业应用。虽然技术小型化增加了纳米卫星的整体性能,但大小和质量约束通常限制卫星及其有效载荷能力。 Nanosatellitc星座通过融合来自多个小卫星的数据来提高精度,或通过在小卫星之间分开工作量来解决问题。此外,小卫星的星座将彻底改变那些受益于全球覆盖范围,频繁重新审查和密切间隔的测量点的研究领域。多个卫星之间的工作分配需要对所有卫星的主动和准确控制,因此需要准确的轨道和姿态确定和控制,以有效地熔化来自多个卫星的数据。这项工作分析了纳米卫星AOCS在单个卫星和卫星星座之间的设计差异。本文的主要焦点要点将分析AOCS要求不同的任务,这些要求对硬件和软件设计的影响。此外,这项工作采用了通过从晶体空间的飞行经验中吸取的设计过程和经验教训获得的现实生活经验。 Delffi。 estcubc-1和其他相关的小-or纳米卫星ADCS / AOC。首先,对要求的工作重点是约束,星座和形成飞行介绍了AOCS设计。为了调查使命复杂性如何影响AOCS要求,将分析不同的使命情况(例如远程领域,自然灾害管理等电信)。其次,本文概述了现有的AOCS硬件设计,并识别纳米卫星星座所需的主要设计差异。此外,将确定纳米卫星星座AOCS硬件设计与系统软件和特定要求的关系。此外,本文描述了改善现有AOC设计的机会。最后,文章定义了单纳卫星和纳米卫星星座AOCS软件架构和设计之间的主要差异。重点将在算法,设计考虑因素,计算复杂性和沟通问题上。

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