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Closed Brayton Cycles for Power Generation in Space: Modeling, simulation and exergy analysis

机译:空间发电的闭合布雷顿周期:建模,仿真和探测分析

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The opportunity of producing power in space seems to be attractive considering the exponential growth of the human population and the renewed interest in space missions. Space Solar Dynamic Systems promise to be a better alternative to PVs by eliminating the need for batteries, offering lower drag problems and high efficiencies taking advantage of the lower temperature of space. In this paper the modeling, simulation and exergy analysis of a Closed Brayton Cycle (CBC) for power generation in space driven by a solar parabolic collector is presented. The main objective has been the investigation of a "reduced weight" configuration, to reduce the launch costs, one of the most critical issues for the system feasibility. The investigation of a "reduced weight" configuration has been performed identifying the key process parameters: the compressor inlet temperature and its pressure ratio and the receiver diameter. Starting from the NASA Freedom data, the results have shown a weight reduction of 21% and an exergy efficiency increase of 7.4%. A comparison with a CBC driven by nuclear power has been then performed, showing the thermodynamic conditions for which the solar dynamic systems could get the recommended specific weight of 30 kg/kW. (C) 2019 Elsevier Ltd. All rights reserved.
机译:考虑到人口的指数增长和对太空任务的重新利益的指数增长,在太空中产生力量的机会似乎是有吸引力的。空间太阳能动态系统承诺通过消除电池的需要,提供更好的PVS替代品,提供较低的拖累问题和利用较低的空间温度的高效率。本文介绍了太阳抛抛抛抛抛抛坑收集器驱动的封闭布雷顿周期(CBC)对发电的建模,仿真和漏洞分析。主要目标是调查“减肥”配置,降低发射成本,是系统可行性最关键的问题之一。已经进行了“减轻重量”配置的研究,识别键工艺参数:压缩机入口温度及其压力比和接收器直径。从美国国家航空航天局自由度开始,结果表明,减轻了21%,高效率增加了7.4%。然后进行了与核电驱动的CBC的比较,显示了太阳能动态系统可以获得推荐的特定重量为30kg / kW的热力学条件。 (c)2019 Elsevier Ltd.保留所有权利。

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