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Asteroid flyby opportunities using semi-autonomous CubeSats: Mission design and science opportunities

机译:使用半自动立方体卫星的小行星飞越机会:任务设计和科学机会

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CubeSat technology has recently attracted great interest from the scientific community, industry and space agencies, and represents today an exciting movement towards a more affordable and accessible space industry. In view of potential applications of CubeSat technology to small-body planetary exploration, this paper studies the feasibility of using autonomous CubeSats to flyby near-Earth asteroids. This work provides an overview of the current state of CubeSat technology and proposes a 3U CubeSat mission using primarily off-the-shelf components. The proposed mission considers a CubeSat is deployed by a larger spacecraft in a periodic orbit around the first (L1) or the second (L2) Sun-Earth Lagrange points (common destinations to observe the Sun and outer space), from where fuel-optimal impulsive trajectories are designed to flyby asteroids between 2019 and 2025. Navigation support and ground operations costs still represent a major challenge for interplanetary CubeSats. As such, Monte Carlo simulations are performed to determine the flyby accuracies that can be accomplished by a 3U CubeSat flying autonomously (i.e., using observations of the Sun during cruise and observations of the asteroid before the flyby to estimate its own trajectory, instead of using ground stations for navigation support). Asteroid flyby opportunities for an autonomous 3U CubeSat are identified between years 2019 and 2025. Flyby altitudes below 500 km are found possible with currently-available CubeSat components. Possible science payloads are also overviewed, and the potential scientific return of such a low-cost mission is discussed.
机译:CubeSat技术最近引起了科学界,工业界和太空机构的极大兴趣,并且在今天代表了朝着更实惠和更容易获得的太空工业发展的激动人心的运动。鉴于CubeSat技术在小行星探索中的潜在应用,本文研究了使用自主CubeSat绕过近地小行星的可行性。这项工作概述了CubeSat技术的当前状态,并提出了一个3U CubeSat任务,主要使用现成的组件进行。拟议的任务考虑到一个立方体卫星是由较大的航天器在第一个(L1)或第二个(L2)太阳-地球拉格朗日点(观察太阳和外层空间的常见目的地)周围的周期性轨道中部署的,燃料从那里最佳冲动轨道的设计目的是在2019年至2025年之间飞越小行星。导航支持和地面运营成本仍然是行星际立方体卫星的一项重大挑战。因此,执行蒙特卡洛模拟来确定可以由3U CubeSat自主飞行完成的飞行精度(即,使用巡航期间的太阳观测和飞行之前的小行星观测来估算其自身的轨迹,而不是使用地面站以提供导航支持)。可以确定在2019年至2025年之间实现自主3U CubeSat的小行星飞越机会。使用当前可用的CubeSat组件,可以发现低于500 km的飞越高度。还概述了可能的科学有效载荷,并讨论了这种低成本任务的潜在科学回报。

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