Working Fluids Analysis and Discussions of the Stirling Cycle for Space Nuclear Reactors

Chenhao Yang, Nailiang Zhuang, Hangbin Zhao, Xiaobin Tang
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Abstract

Space nuclear power is the most potential power source for future deep space exploration, interstellar navigation, and planetary surface base station. For medium and high-power space missions, an efficient, compact and reliable energy conversion system that converts nuclear reactor thermal energy into mechanical energy or electrical energy is critical for the entire power system. The Stirling cycle that converts thermal energy into mechanical energy through expansion and compression of working fluids has the advantages of strong load adaptation, high conversion efficiency, modular combination, robust reliability, redundancy, etc. Therefore, it is very suitable for future high-power deep space missions. The technical route of space nuclear power proposed by Nanjing University of Aeronautics and Astronautics is based on the modular Stirling thermoelectric conversion and liquid molten salt core scheme. The present study is the simulation prediction of the thermodynamic performance of the Stirling engine. The working fluid’s composition, physical properties, and leakage properties have great influences on the thermal efficiency, operating lifetime, and reliability of the Stirling cycle. In this regard, a comprehensive study on the properties and effects of H2, He, He-Xe mixture, N2 and air as working fluids was carried out in the present study. The modified Stirling thermodynamic model IPD-MSM was used to simulate the Stirling cycle, and the heat and power losses caused by various irreversible factors were analyzed. Moreover, impacts of operating pressure, heat source temperature, and piston frequency on every heat and power loss were discussed. The results show that the pressure loss and the non-ideal heat transfer loss are the dominant losses. However, different working fluids and operating conditions have different performances of power loss. The effect of operating frequency and working pressure are significant, while the effect of operating temperature is relatively small. The present study provides theoretical support for selecting thermoelectric conversion methods for future medium and high-power space missions.
空间核反应堆斯特林循环工作流体分析与讨论
空间核动力是未来深空探测、星际导航、行星地面基站最有潜力的动力源。在中大功率航天任务中,将核反应堆热能转换为机械能或电能的高效、紧凑、可靠的能量转换系统是整个动力系统的关键。斯特林循环通过工质的膨胀和压缩将热能转化为机械能,具有负荷适应性强、转换效率高、组合模块化、可靠性强、冗余等优点。因此,它非常适合未来的高功率深空任务。南京航空航天大学提出的空间核动力技术路线是基于模块化斯特林热电转换和液态熔盐堆芯方案。本研究是对斯特林发动机热力性能的模拟预测。工作流体的组成、物理性质和泄漏性质对斯特林循环的热效率、工作寿命和可靠性有很大影响。为此,本研究对H2、He、He- xe混合物、N2和空气作为工质的性质和影响进行了综合研究。采用改进的斯特林热力学模型IPD-MSM对斯特林循环进行模拟,分析了各种不可逆因素造成的热功率损失。此外,还讨论了操作压力、热源温度和活塞频率对各热功率损失的影响。结果表明,压力损失和非理想换热损失是主要损失。然而,不同的工质和工况对功率损失的影响是不同的。工作频率和工作压力的影响显著,而工作温度的影响相对较小。本研究为今后中大功率航天任务中热电转换方法的选择提供了理论支持。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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