超临界二氧化碳循环中混合气对压缩机和冷却器的影响

L. Vesely, K. Manikantachari, Subith S. Vasu, J. Kapat, Václav Dostál, Scott Martin
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引用次数: 2

摘要

随着人们对电力需求的不断增加,新型发电技术的发展日益受到人们的重视。超临界二氧化碳(S-CO2)循环就是这样一种技术,它具有相对较高的效率、紧凑性,并且有可能提供完整的碳捕获。S-CO2循环技术适用于几乎所有现有的热源,如太阳能、地热、化石燃料、核电站和废热回收系统。然而,众所周知,操作条件、设备、工作流体和循环布局的最佳组合决定了一个循环的最大可实现效率。在S-CO2循环中,压缩装置是至关重要的,因为它在二氧化碳临界点附近运行。然而,在临界点附近,CO2的热物理性质对压力和温度的变化高度敏感。因此,在这种循环的设计中,压缩机进口的CO2条件是至关重要的。此外,在S-CO2中稀释的杂质会导致偏离理想的S-CO2循环,因为这些杂质会改变工作流体的热力学性质。因此,目前的工作考察了不同杂质组成的影响,考虑了二氧化碳和:He、CO、O2、N2、H2、CH4或H2S的二元混合物;不同的S-CO2循环成分。研究的第二部分着重于基本循环和组件效率的计算。这项研究的结果将为压缩机和冷却器的最佳混合物组成提供指导和定义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effect of Mixtures on Compressor and Cooler in Supercritical Carbon Dioxide Cycles
With the increasing demand for electric power, the development of new power generation technologies is gaining increased attention. The supercritical carbon dioxide (S-CO2) cycle is one such technology, which has relatively high efficiency, compactness, and potentially could provide complete carbon capture. The S-CO2 cycle technology is adaptable for almost all of the existing heat sources such as solar, geothermal, fossil, nuclear power plants, and waste heat recovery systems. However, it is known that, optimal combinations of: operating conditions, equipment, working fluid, and cycle layout determine the maximum achievable efficiency of a cycle. Within an S-CO2 cycle the compression device is of critical importance as it is operating near the critical point of CO2. However, near the critical point, the thermo-physical properties of CO2 are highly sensitive to changes of pressure and temperature. Therefore, the conditions of CO2 at the compressor inlet are critical in the design of such cycles. Also, the impurity species diluted within the S-CO2 will cause deviation from an ideal S-CO2 cycle as these impurities will change the thermodynamic properties of the working fluid. Accordingly the current work examines the effects of different impurity compositions, considering binary mixtures of CO2 and: He, CO, O2, N2, H2, CH4, or H2S; on various S-CO2 cycle components. The second part of the study focuses on the calculation of the basic cycles and component efficiencies. The results of this study will provide guidance and defines the optimal composition of mixtures for compressors and coolers.
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