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Thermodynamic and turbomachinery design analysis of supercritical Brayton cycles for exhaust gas heat recovery

机译:超临界布雷顿循环用于废气热回收的热力学和涡轮机械设计分析

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Significant amount of energy is wasted in engine systems as waste heat. In this study, the use of supercritical Brayton cycles for recovering exhaust gas heat of large-scale engines is investigated. The aim of the study is to investigate the electricity production potential with different operational conditions and working fluids, and to identify the main design parameters affecting the cycle power production. The studied process configurations are the simple recuperated cycle and intercooled recuperated cycle. As the performance of the studied cycle is sensitive on the turbomachinery design and efficiencies, the design of the process turbine and compressor were included in the analysis. Cycles operating with CO2 and ethane resulted in the highest performances in both the simple and intercooled cycle configurations, while the lowest cycle performances were simulated with ethylene and R116. 18.3 MW engine was selected as the case engine and maximum electric power output of 1.76 MW was simulated by using a low compressor inlet temperature, intercooling, and high turbine inlet pressure. It was concluded that working fluid and the cycle operational parameters have significant influence not only on the thermodynamic cycle design, but also highly affects the optimal rotational speed and geometry of the turbomachines. (C) 2018 Elsevier Ltd. All rights reserved.
机译:在发动机系统中,大量的能量被浪费为废热。在这项研究中,研究了使用超临界布雷顿循环来回收大型发动机的废气热。该研究的目的是研究具有不同运行条件和工作流体的发电潜力,并确定影响循环发电的主要设计参数。研究的工艺配置为简单的换热循环和中冷的换热循环。由于研究循环的性能对涡轮机械的设计和效率很敏感,因此分析中包括了过程涡轮和压缩机的设计。使用CO2和乙烷的循环在简单和中冷循环配置中均具有最高的性能,而使用乙烯和R116则模拟了最低的循环性能。选择了18.3兆瓦发动机作为案例发动机,并通过使用低压缩机入口温度,中间冷却和高涡轮入口压力模拟了1.76兆瓦的最大电力输出。结论是,工作流体和循环操作参数不仅对热力循环设计有重要影响,而且还极大地影响了涡轮机的最佳转速和几何形状。 (C)2018 Elsevier Ltd.保留所有权利。

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