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首页> 外文期刊>Journal of nuclear engineering and radiation science >Performance Analyses and Evaluation of Co-2 and N-2 as Coolants in a Recuperated Brayton Gas Turbine Cycle for a Generation IV Nuclear Reactor Power Plant
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Performance Analyses and Evaluation of Co-2 and N-2 as Coolants in a Recuperated Brayton Gas Turbine Cycle for a Generation IV Nuclear Reactor Power Plant

机译:IV核反应堆发电厂恢复布雷顿燃气轮机循环中CO-2和N-2的性能分析及评价

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摘要

As demands for clean and sustainable energy renew interests in nuclear power to meet future energy demands, generation IV nuclear reactors are seen as having the potential to provide the improvements required for nuclear power generation. However, for their benefits to be fully realized, it is important to explore the performance of the reactors when coupled to different configurations of closed-cycle gas turbine power conversion systems. The configurations provide variation in performance due to different working fluids over a range of operating pressures and temperatures. The objective of this paper is to undertake analyses at the design and off-design conditions in combination with a recuperated closed-cycle gas turbine and comparing the influence of carbon dioxide and nitrogen as the working fluid in the cycle. The analysis is demonstrated using an in-house tool, which was developed by the authors. The results show that the choice of working fluid controls the range of cycle operating pressures, temperatures, and overall performance of the power plant due to the thermodynamic and heat properties of the fluids. The performance results favored the nitrogen working fluid over CO2 due to the behavior CO2 below its critical conditions. The analyses intend to aid the development of cycles for generation IV nuclear power plants (NPPs) specifically gas-cooled fast reactors (GFRs) and very high-temperature reactors (VHTRs).
机译:随着对清洁和可持续能源的需求重新激发了人们对核能的兴趣,以满足未来的能源需求,第四代核反应堆被视为有潜力提供核能发电所需的改进。然而,为了充分实现其效益,探索反应堆在与不同配置的闭式循环燃气轮机功率转换系统耦合时的性能是很重要的。由于不同的工作流体在不同的工作压力和温度范围内,这些配置提供了不同的性能。本文的目的是结合一台回热闭式循环燃气轮机,在设计和非设计条件下进行分析,并比较二氧化碳和氮气作为循环工质的影响。使用作者开发的内部工具对分析进行了演示。结果表明,由于工质的热力学和热性质,工质的选择控制着循环工作压力、温度和电厂的整体性能范围。由于CO2在临界条件下的行为,性能结果有利于氮工质而非CO2。这些分析旨在帮助开发第四代核电站(NPP)的循环,特别是气冷快堆(GFR)和超高温反应堆(VHTR)。

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