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两级有机朗肯循环发电系统的㶲分析

Exergy Analysis of Two-Stage Organic Rankine Cycle Power Generation System.

作者信息

Liu Guanglin, Wang Qingyang, Xu Jinliang, Miao Zheng

机构信息

Beijing Key Laboratory of Multiphase Flow and Heat Transfer for Low Grade Energy Utilization, North China Electric Power University, Beijing 102206, China.

出版信息

Entropy (Basel). 2020 Dec 30;23(1):43. doi: 10.3390/e23010043.

Abstract

Organic Rankine cycle (ORC) power generation is an effective way to convert medium and low temperature heat into high-grade electricity. In this paper, the subcritical saturated organic Rankine cycle system with a heat source temperature of 100~150 °C is studied with four different organic working fluids. The variations of the exergy efficiencies for the single-stage/two-stage systems, heaters, and condensers with the heat source temperature are analyzed. Based on the condition when the exergy efficiency is maximized for the two-stage system, the effects of the mass split ratio of the geothermal fluid flowing into the preheaters and the exergy efficiency of the heater are studied. The main conclusions include: The exergy efficiency of the two-stage system is affected by the evaporation temperatures of the organic working fluid in both the high temperature and low temperature cycles and has a maximum value. Under the same heat sink and heat source parameters, the exergy efficiency of the two-stage system is larger than that of the single-stage system. For example, when the heat source temperature is 130 °C, the exergy efficiency of the two-stage system is increased by 9.4% compared with the single-stage system. For the two-stage system, analysis of the four organic working fluids shows that R600a has the highest exergy efficiency, although R600a is only suitable for heat source temperature below 140 °C, while other working fluids can be used in systems with higher heat source temperatures. The mass split ratio of the fluid in the preheaters of the two-stage system depends on the working fluid and the heat source temperature. As the heat source temperature increases, the range of the split ratio becomes narrower, and the curves are in the shape of an isosceles triangle. Therefore, different working fluids are suitable for different heat source temperatures, and appropriate working fluid and split ratio should be determined based on the heat source parameters.

摘要

有机朗肯循环(ORC)发电是将中低温热能转化为高品位电能的有效途径。本文研究了热源温度为100~150℃的亚临界饱和有机朗肯循环系统,采用了四种不同的有机工质。分析了单级/两级系统、加热器和冷凝器的㶲效率随热源温度的变化。基于两级系统㶲效率最大化的条件,研究了流入预热器的地热流体质量分配比和加热器㶲效率的影响。主要结论如下:两级系统的㶲效率受高温和低温循环中有机工质蒸发温度的影响,存在最大值。在相同的热沉和热源参数下,两级系统的㶲效率大于单级系统。例如,当热源温度为130℃时,两级系统的㶲效率比单级系统提高了9.4%。对于两级系统,对四种有机工质的分析表明,R600a的㶲效率最高,尽管R600a仅适用于热源温度低于140℃的情况,而其他工质可用于热源温度较高的系统。两级系统预热器中流体的质量分配比取决于工质和热源温度。随着热源温度的升高,分配比的范围变窄,曲线呈等腰三角形形状。因此,不同的工质适用于不同的热源温度,应根据热源参数确定合适的工质和分配比。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a5fc/7824579/15d8b1f57000/entropy-23-00043-g001.jpg

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