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太空中的冷推进剂管理:面临的挑战和前景
Alessia Simonini1, Michael Dreyer2, Annafederica Urbano3
1Liquid and Solid Propellant Research Expert Group, von Karman Institute for Fluid Dynamics, 72, chaussée de Waterloo, Rhode-Saint-Genèse, 1640, Belgium. alessia.simonini@vki.ac.be.
NPJ microgravity
|March 21, 2024
概括
管理液态和甲等冷推进剂对于长期载人深空任务至关重要. 对于轨道上加油的冷储存和传输技术,仍然存在重大知识缺口.
科学领域:
- 航空航天工程 航空航天工程
- 低温液体管理 低温液体管理
- 深空探索 太空深处的探索
背景情况:
- 载人深空任务需要长期储存推进剂和在轨道上的加油能力.
- 液态,液态甲和液态氧是主要的推进剂,需要冷条件 (低于120K).
- 目前的技术在维持冷推进剂的延长任务持续时间方面面临着挑战.
研究的目的:
- 概述载人深空探索的推进剂管理中的挑战和前景.
- 审查现有的冷流体管理的参考任务,架构和技术演示者.
- 识别冷储存和转移操作中的关键知识缺口.
主要方法:
- 审查关于推进剂管理的科学文献和技术报告.
- 对深空探索的参考任务和架构进行分析.
- 对冷储存和转移的技术演示者的评估.
- 根据ESA的SciSpacE战略白皮书综合发现.
主要成果:
- 确定了液态,液态甲和液态氧作为主要推进剂,需要冷管理.
- 强调了轨道冷储存库的必要性,以延长任务.
- 总结了冷储存和转移的最新技术,揭示了许多未解决的物理知识差距.
结论:
- 对于成功的载人深空任务,需要在了解和管理冷推进剂方面取得重大进展.
- 进一步的研究是必不可少的,以填补在物理知识中发现的差距,以确保可靠的冷存储和转移.
- 应对这些挑战对于实现长期太空探索和轨道上服务至关重要.
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