空间核反应堆闭式布雷顿循环中氦-氙混合动力特性研究

Xie Yang, Lei Shi
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引用次数: 0

摘要

与陆地高温气冷堆(HTGR)电厂采用氦作为闭式布雷顿循环(CBC)的工质不同,建议采用适当摩尔质量的氦-氙混合物作为CBC转换的空间核反应堆动力的工质。研究氦氙混合物组分对净系统效率的影响,为选择合适的循环工作液提供参考。在讨论了不同氦氙混合物的物理性质的基础上,研究了相关的物理性质,分析了它们对CBC关键参数(绝热系数、回热器效率和归一化压力损失系数)的影响。然后详细研究了考虑不同氦氙混合物的CBC网系统效率的综合热力学。物理性质研究表明,在0.7 MPa和400 K下,氦氙混合物的绝热系数随摩尔质量的增加而增加,从0.400(纯氦)增加到0.414(纯氙),而回热器效率随摩尔质量的增加先增加后降低,归一化压力损失系数随摩尔质量的增加而单调增加。热力学分析结果表明,绝热系数对系统净效率的影响较小,系统净效率随回热器效率的增加而增加,系统净效率随归一化压力损失系数的增加而降低。最后,采用氦-8.6%氙的混合物代替纯氦作为工作流体,以确保较少的涡轮机械(涡轮和压气机)级,并获得最大的回热器效率。当冷/热侧温度为400 / 1300 K时,理论上系统净效率可达29.18%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The Characteristics Study of Helium-Xenon Mixture in Closed Brayton Cycle for Space Nuclear Reactor Power
Differing from the adoption of helium as working fluid of closed Brayton cycle (CBC) for terrestrial high temperature gas cooled reactor (HTGR) power plants, helium-xenon mixture with a proper molar weight was recommended as working fluid for space nuclear reactor power with CBC conversion. It is essential to figure out how the component of helium-xenon mixture affects the net system efficiency, in order to provide reference for the selection of appropriate cycle working fluid. After a discussion of the physical properties of different helium-xenon mixtures, the related physical properties are studied to analyze their affection on the key parameters of CBC, including adiabatic coefficient, recuperator effectiveness and normalized pressure loss coefficient. Then the comprehensive thermodynamics of CBC net system efficiency is studied in detail considering different helium-xenon mixtures. The physical properties study reveals that at 0.7 MPa and 400 K, the adiabatic coefficient of helium-xenon mixture increases with increased molar weight, from 0.400 (pure helium) to 0.414 (pure xenon), while recuperator effectiveness firstly increases and then decreases with the increase of molar weight, and the normalized pressure loss coefficient increases monotonically with molar weight increases. The thermodynamic analysis results show that the adiabatic coefficient has less effect on the net system efficiency, while the net system efficiency increases with increased recuperator effectiveness, and the net system efficiency decreases with normalized pressure loss coefficient increases. Finally, the mixture of helium-8.6% xenon was adopted as working fluid, instead of pure helium, for ensuring less turbine mechanicals (turbine and compressor) stages, and resulting maximum recuperator effectiveness. At the given cold / hot side temperature of 400 / 1300 K, the net system efficiency can reach 29.18% theoretically.
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