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Deep space transportation enhanced by 20 kW-Class Hall Thrusters

机译:20 kW级霍尔推力器增强了深空运输

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摘要

Deep space is the new frontier for human exploration, with Moon and Mars identified as fundamental targets. Improving in-space transportation capabilities has been recognized as one of the critical enabler for sustainable and affordable space programs in Earth proximity and beyond. Envisioning the presence of future deep space infrastructures, cargo transferring becomes a major issue that can benefit from improvements in in-space propulsion technology. Electric propulsion could represent the turning point, thanks to the combination of new system architectures and technology advancements, e.g. cluster architecture and magnetic shielding, and improved capability of on-board power generation. High-power Hall Thrusters are considered the most promising solution for future space exploration, thanks to a favourable thrust to power ratio, higher than Gridded Ion Engines. Reusable platforms, based on Hall Thrusters, could represent a valid alternative to chemical-propelled spacecraft. These systems could be exploited to support human presence in deep space, delivering life support items and providing on-orbit servicing capabilities. In this paper, the typical mission analysis tools have been exploited to analyse the selected scenarios. The analysis highlights possible advantages achievable adopting high-power Hall Thrusters on board reusable platforms. Since the design of these spacecraft envisions the adoption of a 20 kW-class Hall Thruster string, the mass and power budgets are obtained for those subsystems that are most affected by this critical technology. Then, the feasibility of each scenario is assessed considering the needs defined not only by the traffic plan, in terms of loading/unloading cargo and transfer duration, but also by the peculiar mission and physical constraints. Last, the different platform design solutions are compared with respect to their electric propulsion configurations, in order to identify the possible commonalities in terms of architecture and technology, in line with the current trend of modularity and affordability.
机译:深空是人类探索的新领域,月球和火星被确定为基本目标。改善空间运输能力已被公认为是实现地球附近及周边地区可持续和负担得起的空间计划的关键推动力之一。考虑到未来深空基础设施的存在,货物转移将成为一个主要问题,可以从太空推进技术的改进中受益。得益于新系统架构和技术进步的结合,电力推进可能成为转折点。集群架构和磁屏蔽,以及增强的车载发电能力。大功率霍尔推力器被认为是未来太空探索的最有前途的解决方案,这归功于其推力功率比高于网格离子发动机。基于霍尔推力器的可重复使用平台可以代表化学推进航天器的有效替代方案。这些系统可以被用来支持人类在深空的存在,提供生命支持物品并提供在轨维修能力。在本文中,典型的任务分析工具已被利用来分析所选方案。分析强调了在可重复使用的平台上采用大功率霍尔推力器可获得的潜在优势。由于这些航天器的设计设想采用20 kW级的霍尔推力器弦,因此获得了受该关键技术影响最大的那些子系统的质量和功率预算。然后,评估每种方案的可行性时,不仅要考虑交通计划所定义的需求,就装/卸货物和转运时间而言,还应根据特殊的任务和实际限制来定义需求。最后,根据当前的模块化和可负担性趋势,比较了不同平台设计解决方案的电推进配置,以便确定架构和技术方面的可能共性。

著录项

  • 来源
    《Acta astronautica》 |2020年第6期|83-96|共14页
  • 作者

  • 作者单位

    Politecn Torino Dept Mech & Aerosp Engn Turin Italy;

    Natl Res Council Italy Inst Elect Comp & Telecommun Engn Turin Italy;

    SITAEL SpA Pisa Italy;

    ASI Rome Italy;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Space tug; Electric propulsion; Transportation; Hall Thruster;

    机译:太空拖船;电动推进;运输;霍尔推力器;

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