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Optimization of a recompression supercritical carbon dioxide cycle for an innovative central receiver solar power plant

机译:创新型中央接收器太阳能发电厂的再压缩超临界二氧化碳循环的优化

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Peculiar thermodynamic properties of carbon dioxide (CO2) when it is held at or above its critical condition (stated as supercritical CO2 or sCO(2)) have attracted the attention of many researchers. Its excellent thermophysical properties at medium-to-moderate temperature range have made it to be considered as the alternative working fluid for next power plant generation. Among those applications, future nuclear reactors, solar concentrated thermal energy or waste energy recovery have been shown as the most promising ones. In this paper, a recompression sCO(2) cycle for a solar central particles receiver application has been optimized, observing net cycle efficiency close to 50%. However, small changes on cycle parameters such as working temperatures, recuperators efficiencies or mass flow distribution between low and high temperature recuperators were found to drastically modify system overall efficiency. In order to mitigate these uncertainties, an optimization analysis based on recuperators effectiveness definition was performed observing that cycle efficiency could lie among 40%-50% for medium-to-moderate temperature range of the studied application (630 degrees C-680 degrees C). Due to the lack of maturity of current sCO(2) technologies and no power production scale demonstrators, cycle boundary conditions based on the solar application and a detailed literature review were chosen. (C) 2016 Published by Elsevier Ltd.
机译:当二氧化碳(CO2)处于或高于其临界条件(称为超临界CO2或sCO(2))时,其奇特的热力学性质吸引了许多研究人员的注意力。它在中至中等温度范围内具有出色的热物理性质,使其被视为下一代发电厂的替代工作流体。在这些应用中,未来的核反应堆,太阳能集中热能或废能回收已被证明是最有前途的。在本文中,针对太阳能中央粒子接收器应用的再压缩sCO(2)循环进行了优化,观察到净循环效率接近50%。但是,发现循环参数(例如工作温度,换热器效率或低温和高温换热器之间的质量流量分布)的微小变化会极大地改变系统的整体效率。为了减轻这些不确定性,进行了基于换热器有效性定义的优化分析,观察到在所研究应用的中至中等温度范围(630摄氏度至680摄氏度)下,循环效率可能在40%-50%之间。由于目前的sCO(2)技术不够成熟,并且没有电力生产规模的演示者,因此选择了基于太阳能应用的循环边界条件和详细的文献综述。 (C)2016由Elsevier Ltd.出版

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