globalchange  > 气候变化事实与影响
CSCD记录号: CSCD:6409123
论文题名:
超临界CO_2再压缩/再热燃煤发电系统热力循环
其他题名: Thermodynamics analysis of S-CO_2 recompression-reheating cycle for coal fired power plant
作者: 孙恩慧; 郑雅文; 王鸽; 徐进良
刊名: 科学通报
ISSN: 0023-074X
出版年: 2019
卷: 64, 期:2, 页码:234-244
语种: 中文
中文关键词: 超临界二氧化碳循环 ; 燃煤发电 ; 烟气余热 ; 烟气冷却器
英文关键词: supercritical carbon dioxide cycle ; coal fired power plant ; residual heat of flue gas ; flue gas cooler
WOS学科分类: ENGINEERING ELECTRICAL ELECTRONIC
WOS研究方向: Engineering
中文摘要: 煤在我国处于基础能源地位,发展变革性燃煤发电技术具有重要意义.与超临界水蒸气朗肯循环相比,超临界二氧化碳(S-CO_2)布雷顿循环具有效率高及系统紧凑等优点,是未来动力循环的发展方向,但S-CO_2燃煤发电面临循环构建、锅炉压降及烟气余热吸收等关键难题.为此,本文发展了热力学、CO_2流动传热及烟气余热能量分布综合模型,研究了S-CO_2再压缩/再热燃煤发电系统热力学特性,首次发现热效率曲线对于一次再热和二次再热出现交叉,进而提出了S-CO_2循环采用一次再热或二次再热的筛选准则.针对锅炉烟气余热吸收问题,本文通过揭示主蒸气温度和压力间的内在关系,提出了调节主蒸气压力方法,结果表明该方法可有效吸收烟气余热,但受材料耐压极限所制约,因而本文在S-CO_2再压缩/再热循环基础上,引入烟气冷却器,以解决烟气余热吸收问题,给出了烟气冷却器与热力系统间的最佳集成模式,所构建的燃煤发电系统热效率达50.82%,锅炉效率达94.43%.本文为发展S-CO_2燃煤发电系统奠定了理论和技术基础.
英文摘要: As a kind of fossil energy,coal plays an important role in global energy structure.In China,coal fired power plants provide more than 60% of the total electricity supply.Compared to the water-steam Rankine cycle,the supercritical carbon dioxide (S-CO_2) Brayton cycle exhibits advantages in simpler cycle layout and higher efficiencies.The objective of this paper is to explore the possibility that the S-CO_2 Brayton cycle can be used for large scale coal fired power plant.Such application presents challenges in the thermodynamic cycle construction,arrangement of heat transfer components and residual heat utilization of flue gas.Here,the S-CO_2 recompression cycle,incorporating reheating/double-reheating technique,is integrated with the coal fired power plant.The performance of the power plant is analyzed by coupling the thermodynamics cycle,boiler pressure drops in heat transfer components,and thermal energy distribution of flue gas in the boiler tail flue.The residual heat of flue gas is absorbed by the S-CO_2 cycle,an additional flue gas cooler (FGC) and two air preheaters to satisfy the energy cascade utilization principle.The results show that,if the S-CO_2 recompression cycle is used alone without reheating,the low-temperature flue gas energy is difficult to be absorbed to cause non-acceptable outlet flue gas temperature such as higher than 120°C.By neglecting pressured drops in heat transfer components,the S-CO_2 recompression cycle incorporating reheating increases the system thermal efficiency,but makes it difficult to recover the residual heat of flue gas.When pressure drops are considered,we show that,for the first time,the curves of thermal efficiencies versus reheater pressure drops are crossed between the S-CO_2 recompression-reheating cycle and the S-CO_2 recompression-double-reheating cycle.Based on this finding,the criterion is proposed to judge at what condition a single-reheating cycle is needed,and at what condition a double-reheating cycle is necessary.It is demonstrated that the CO_2 temperature entering the boiler can be decreased by elevating the main vapor pressure.Thus,the adjusting main vapor pressure method is proposed to absorb the residual heat of flue gas.The system efficiency is sharply increased with increase of main vapor pressures.Because the main vapor temperature T_5 and pressure P_5 are strongly coupled,for example,P_5 reaches 43.6 MPa at T_5=615°C and the secondary air temperature of 500°C,the adjusting main vapor pressure method challenges the material pressure tolerance limit.Adding a flue gas cooler (FGC) not only recovers the residual heat of flue gas,but also ensures that the pressure is within the material pressure tolerance limit.The optimal scheme of the FGC integrated with the thermal cycle is investigated,among which,a smaller CO_2 flow rate stream consecutively extracted from the main compressor outlet,being heated by the low temperature flue gas,and entering the outlet of the low temperature recuperator heat exchanger,is the best.By using the S-CO_2 recompression- reheating cycle together with a FGC,the system thermal efficiency and boiler efficiency attain 50.82% and 94.43%,respectively.This paper gives a clue to design and operate high efficiency,simple layout and compact S-CO_2 coal fired power plant.
资源类型: 期刊论文
标识符: http://119.78.100.158/handle/2HF3EXSE/157864
Appears in Collections:气候变化事实与影响

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作者单位: (北京)华北电力大学能源动力与机械工程学院, 低品位能源多相流与传热北京市重点实验室, 北京 102206, 中国

Recommended Citation:
孙恩慧,郑雅文,王鸽,等. 超临界CO_2再压缩/再热燃煤发电系统热力循环[J]. 科学通报,2019-01-01,64(2):234-244
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