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Integrated Optimization of Mars Hybrid Solar-Electric/Chemical Propulsion Trajectories

机译:火星混合动力太阳/化学/化学推进轨迹的综合优化

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NASA's Human Exploration and Operation Mission Directorate is developing a reusable hybrid transportation architecture in which both chemical and solar-electric propulsion systems are used to deliver crew and cargo to the Martian sphere of influence. By combining chemical and solar-electric propulsions into a single spacecraft and applying each where it is the most effective, the hybrid architecture enables a series of Mars trajectories that are more fuel efficient than an all chemical propulsion architecture without significant increase to trip time. Solving the complex problem of low-thrust trajectory optimization coupled with the vehicle sizing requires development of an integrated trajectory analysis framework. Previous studies have utilized a more segmented optimization framework due to the limitation of the tools available. A new integrated optimization framework was recently developed to address the deficiencies of the previous methods that enables higher fidelity analysis to be performed and increases the efficiency of large design space explorations.
机译:美国国家航空航天局(NASA)的人类探索与运营任务部正在开发一种可重复使用的混合运输体系结构,该体系结构中的化学和太阳能推进系统均用于将机组人员和货物运送到火星的影响范围。通过将化学推进器和太阳能推进器组合到单个航天器中,并在最有效的地方进行应用,混合架构可实现一系列火星轨迹,这些轨迹比全化学推进器结构更省油,而不会显着增加跳闸时间。解决低推力轨迹优化和车辆尺寸确定的复杂问题,需要开发集成的轨迹分析框架。由于可用工具的局限性,先前的研究采用了更细分的优化框架。最近开发了一个新的集成优化框架,以解决以前方法的不足,该方法能够执行更高保真度的分析并提高大型设计空间探索的效率。

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