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Design and optimization of interplanetary spacecraft trajectories.

机译:行星际航天器轨迹的设计和优化。

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Scientists involved in space exploration are always looking for ways to accomplish more with their limited budgets. Mission designers can decrease operational costs by crafting trajectories with low launch costs, short time-of-flight, or low propellant requirements. Gravity-assist maneuvers and low-thrust, high-efficiency ion propulsion can be of great help. This dissertation describes advances in methods to design and optimize interplanetary spacecraft trajectories. particularly for missions using gravity-assist maneuvers or low-thrust engines (or both). The first part of this dissertation describes a new, efficient, two-step methodology to design and optimize low-thrust gravity-assist trajectories. Models for the launch vehicle, solar arrays, and engines are introduced and several examples of optimized trajectories are presented. For example, a 3.7-year Earth-Venus-Earth-Mars-Jupiter flyby trajectory with maximized final mass is described. The way that the parameterization of the optimization problem affects convergence speed and reliability is also investigated. The choice of coordinate system is shown to make a significant difference. The second part of this dissertation describes a way to construct Earth-Mars cycler trajectories---periodic orbits that repeatedly encounter Earth and Mars, yet require little or no propellant. We find that well-known cyclers, such as the Aldrin cycler, are special cases of a much larger family of cyclers. In fact, so many new cyclers are found that a comprehensive naming system (nomenclature) is proposed. One particularly promising new cycler, the "ballistic S1L1 cycler" is analyzed in greater detail.
机译:参与太空探索的科学家一直在寻找方法,以有限的预算来完成更多工作。任务设计者可以通过以较低的发射成本,较短的飞行时间或较低的推进剂需求来设计弹道,从而降低运营成本。重力辅助操纵和低推力,高效率的离子推进将有很大帮助。本文介绍了设计和优化行星际航天器轨迹的方法的进展。特别适用于使用重力辅助机动或低推力发动机(或两者兼有)的任务。本文的第一部分描述了一种新的,有效的,分两步进行设计和优化低推力重力辅助轨迹的方法。介绍了运载火箭,太阳能电池板和发动机的模型,并给出了优化轨迹的几个示例。例如,描述了具有最大最终质量的3.7年的地球-金星-地球-火星-木星飞越轨迹。还研究了优化问题的参数化影响收敛速度和可靠性的方式。坐标系的选择显示出很大的不同。本文的第二部分描述了一种构造地球-火星循环器轨迹的方法-周期性地反复遇到地球和火星,但几乎不需要推进剂的轨道。我们发现,著名的自行车手(例如Aldrin自行车手)是更大系列的自行车手的特例。实际上,发现了这么多新的循环仪,因此提出了一个综合的命名系统(命名法)。一种特别有前途的新骑行者,“弹道S1L1骑行者”进行了更详细的分析。

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