Performance Analysis of Generation IV Nuclear Reactor Power Plant Using CO2 and N2: Case Study of a Recuperated Brayton Gas Turbine Cycle

E. Osigwe, A. Gad-Briggs, T. Nikolaidis, P. Pilidis, S. Sampath
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引用次数: 3

Abstract

With renewed interest in nuclear power to meet the world’s future energy demand, the Generation IV nuclear reactors are the next step in the deployment of nuclear power generation. However, for the potentials of these nuclear reactor designs to be fully realized, its suitability, when coupled with different configurations of closed-cycle gas turbine power conversion systems, have to be explored and performance compared for various possible working fluids over a range of operating pressures and temperatures. The purpose of this paper is to carry out performance analysis at the design and off-design conditions for a Generation IV nuclear-powered reactor in combination with a recuperated closed-cycle gas turbine and comparing the influence of carbon dioxide and nitrogen as working fluid in the cycle. This analysis is demonstrated in GTACYSS; a performance and preliminary design code developed by the authors for closed-cycle gas turbine simulations. The results obtained shows 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.
第四代核反应堆电厂使用CO2和N2的性能分析:以再生布雷顿燃气轮机循环为例
随着人们对核能重新燃起兴趣,以满足世界未来的能源需求,第四代核反应堆是核能发电部署的下一步。然而,为了充分发挥这些核反应堆设计的潜力,必须探索其与不同配置的闭式循环燃气轮机动力转换系统相结合时的适用性,并在一系列工作压力和温度下比较各种可能的工作流体的性能。本文的目的是对第四代核动力反应堆与回热式闭式循环燃气轮机在设计工况和非设计工况下的性能进行分析,并比较二氧化碳和氮气作为工作流体在循环中的影响。该分析在GTACYSS中得到了验证;作者开发的闭式循环燃气轮机模拟性能和初步设计规范。结果表明,由于流体的热力学和热性质,工作流体的选择控制着循环工作压力、温度和电厂整体性能的范围。由于CO2低于其临界条件,因此性能结果更有利于氮气工质而不是CO2。
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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