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首页> 外文期刊>Applied Energy >Thermodynamic analysis and preliminary design of closed Brayton cycle using nitrogen as working fluid and coupled to small modular Sodium-cooled fast reactor (SM-SFR)
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Thermodynamic analysis and preliminary design of closed Brayton cycle using nitrogen as working fluid and coupled to small modular Sodium-cooled fast reactor (SM-SFR)

机译:以氮气为工作流体并与小型模块化钠冷快堆(SM-SFR)耦合的封闭布雷顿循环的热力学分析和初步设计

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Sodium-cooled fast reactor (SFR) is considered the most promising of the Generation IV reactors for their near-term demonstration of power generation. Small modular SFRs (SM-SFRs) have less investment risk, can be deployed more quickly, are easier to operate and are more flexible in comparison to large nuclear reactor. Currently, SFRs use the proven Rankine steam cycle as the power conversion system. However, a key challenge is to prevent dangerous sodium-water reaction that could happen in SFR coupled to steam cycle. Nitrogen gas is inert and does not react with sodium. Hence, intercooled closed Brayton cycle (CBC) using nitrogen as working fluid and with a single shaft configuration has been one common power conversion system option for possible near-term demonstration of SFR. In this work, a new two shaft nitrogen CBC with parallel turbines was proposed to further simplify the design of the turbomachinery and reduce turbomachinery size without compromising the cycle efficiency. Furthermore, thermodynamic performance analysis and preliminary design of components were carried out in comparison with a reference single shaft nitrogen cycle. Mathematical models in Matlab were developed for steady state thermodynamic analysis of the cycles and for preliminary design of the heat exchangers, turbines and compressors. Studies were performed to investigate the impact of the recuperator minimum terminal temperature difference (TTD) on the overall cycle efficiency and recuperator size. The effect of turbomachinery efficiencies on the overall cycle efficiency was examined. The results showed that the cycle efficiency of the proposed configuration was comparable to the 39.44% efficiency of the reference cycle. In addition, the study indicated that the new configuration has the potential to simplify the design of turbomachinery, reduce the size of turbomachinery and provide opportunity for improving the efficiency of the turbomachinery. The findings so far revealed that the proposed two-shaft CBC with nitrogen as working fluid could be a promising power conversion system for SM-SFRs near-term demonstration. (C) 2017 Elsevier Ltd. All rights reserved.
机译:钠冷快堆(SFR)被认为是IV世代反应堆最有希望的近期发电证明。与大型核反应堆相比,小型模块化SFR(SM-SFR)具有较低的投资风险,可以更快地部署,更易于操作并且更灵活。当前,SFR使用成熟的兰金蒸汽循环作为动力转换系统。但是,关键的挑战是防止与蒸汽循环结合的SFR中可能发生的危险钠水反应。氮气是惰性气体,不会与钠反应。因此,使用氮气作为工作流体并具有单轴配置的中冷封闭式布雷顿循环(CBC)已成为一种可能在短期内展示SFR的常见动力转换系统选项。在这项工作中,提出了一种新的带有并联涡轮的两轴氮气CBC,以进一步简化涡轮机械的设计并减小涡轮机械的尺寸,而不会影响循环效率。此外,与参考单轴氮气循环相比,进行了热力学性能分析和部件的初步设计。在Matlab中开发了数学模型,用于循环的稳态热力学分析以及热交换器,涡轮机和压缩机的初步设计。进行了研究以研究换热器最小终端温差(TTD)对整体循环效率和换热器尺寸的影响。研究了涡轮机械效率对整体循环效率的影响。结果表明,提出的配置的循环效率与参考循环的39.44%效率相当。此外,研究表明,新配置有可能简化涡轮机械的设计,减小涡轮机械的尺寸,并为提高涡轮机械的效率提供机会。迄今为止的发现表明,拟议的以氮气为工作流体的两轴CBC可能是SM-SFR近期演示的有希望的动力转换系统。 (C)2017 Elsevier Ltd.保留所有权利。

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