首页> 外文会议>International astronautical congress;IAC 2009 >APPLICATION OF DISCRETE MECHANICS AND OPTIMAL CONTROL TO SPACECRAFT IN NON-KEPLERIAN MOTION AROUND SMALL SOLAR SYSTEM BODIES
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APPLICATION OF DISCRETE MECHANICS AND OPTIMAL CONTROL TO SPACECRAFT IN NON-KEPLERIAN MOTION AROUND SMALL SOLAR SYSTEM BODIES

机译:离散力学和最优控制在小太阳系非基普勒运动中的空间工艺中的应用

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Prolonged operations close to small solar system bodies require a sophisticated control logic to minimize propellant mass and maximize operational efficiency. A control logic based on Discrete Mechanics and Optimal Control (DMOC) is proposed and applied to both conventionally propelled and solar sail spacecraft operating at an arbitrarily shaped asteroid in the class of Itokawa. As an example, stand-off inertial hovering is considered, recently identified as a challenging part of the Marco Polo mission. The approach is easily extended to stand-off orbits. We show that DMOC is applicable to spacecraft control at small objects, in particular with regard to the fact that the changes in gravity are exploited by the algorithm to optimally control the spacecraft position. Furthermore, we provide some remarks on promising developments.
机译:在小型太阳能系统机体附近长时间运行需要复杂的控制逻辑,以最大程度地减少推进剂质量并提高运行效率。提出了一种基于离散力学和最优控制(DMOC)的控制逻辑,并将其应用于在Itokawa类中以任意形状的小行星运行的常规推进和太阳帆航天器。例如,考虑到对峙惯性盘旋,最近被认为是马可波罗飞行任务中具有挑战性的一部分。该方法很容易扩展到对峙轨道。我们证明了DMOC适用于小物体的航天器控制,特别是关于该算法利用重力变化来最佳地控制航天器位置这一事实。此外,我们对有前途的发展发表一些评论。

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