用于太空电力推进的低温泵建模

Andreas Neumann, M. Brchnelova
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引用次数: 0

摘要

太空电力推进技术被越来越多的航天器所采用。这些推进系统的鉴定必须在地面测试设施中进行,这就需要较长的测试时间和强大的泵送系统。在这些通常较大的测试设施中,使用低温泵可以实现较高的泵送速度。低温泵的运行在电能和冷却水消耗方面非常昂贵。因此,优化泵的形状、冷板材料和泵在试验室中的位置非常有益。泵的设计和调整运行策略可以降低成本,延长再生间隔时间。由于成本高、测试时间长,在大型设备中测试不同的泵配置设置大多会令人望而却步。通过建模进行优化是设计和以后运行的更好选择。因此,手头有一个数值模型和经过验证的优化指南是非常有帮助的。本文介绍了德国航天中心为优化低温泵布局和运行而开发的新模型。模型结果与低温泵运行和预热数据进行了比较。这一验证为多层隔热布局和泵冷板升级等进一步优化行动奠定了基础,并有助于了解和减轻水冷凝物对低温泵冷板的不利影响。
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Modelling of Cryopumps for Space Electric Propulsion Usage
Electric space propulsion is a technology that is used in a continuously increasing number of spacecrafts. The qualification of these propulsion systems has to run in ground-based test facilities which requires long testing times and powerful pumping systems. In these usually large test facilities, high pumping speeds are achieved with cryopumps. Cryopump operation is very expensive with respect to electrical energy and cooling water consumption. Therefore, being able to optimize pump shape, cold plate material, and pump placement in a chamber is beneficial. Pump design and tuned operating strategies can reduce costs and increase intervals between regeneration. Testing different pump configuration setups in a large facility is mostly prohibitive due to high costs and long testing times. Optimization via modelling is a better choice for design and also, later, for operation. Therefore, having a numerical model and proven guidelines at hand for optimization is very helpful. This paper describes a new model developed at DLR for the optimization of cryopump layout and operation. Model results are compared with cryopump operational and warm-up data. This validation is the basis for further optimization actions like multi-layer insulation layouts and pump cold plate upgrades, and helps in understanding and mitigating the detrimental effect of water condensates on the cryopump cold plates.
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