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Exergy Analysis of an Industrial Waste Heat Recovery Based Cogeneration Cycle for Combined Production of Power and Refrigeration

机译:基于余热回收的热电联产联合循环的火用分析

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摘要

In this paper, a novel industrial waste heat recovery based cogeneration is proposed for the combined production of power and refrigeration. The system is an integration of Rankine power cycle and absorption refrigeration cycle. A thermodynamic analysis through energy and exergy is employed, and a comprehensive parametric study is performed to investigate the effects of exhaust gas inlet temperature, pinch-point, and gas composition on energy efficiency, power-to-cold ratio, and exergy efficiency of the cogeneration cycle and exergy destruction in each component. The variation in specific heat with exhaust gas composition and temperature is accounted in the analysis for further discussion. The first-law efficiency decreases while power-to-cold ratio and exergy efficiency increase with increasing exhaust gas inlet temperature. The parameters, such as power-to-cold ratio and second-law efficiency, decrease while first-law efficiency increases with increasing pinch-point. Exergy efficiency significantly varies with gas composition and oxygen content of the exhaust gas. Approximating the exhaust gas as air, and the air standard analysis leads to either underestimation or overestimation of cogeneration cycle performance on exergy point of view. Exergy analysis indicates that maximum exergy is destroyed during the steam generation process; which represents around 40% of the total exergy destruction in the overall system. The exergy destruction in each component of the system varies significantly with exhaust gas inlet temperature and pinch-point. The present analysis contributes further information on the role of composition, exhaust gas temperature, and pinch-point influence on the performance of a waste heat recovery based cogeneration system from an exergy point of view.
机译:在本文中,提出了一种新型的基于工业余热回收的热电联产,用于电力和制冷的联合生产。该系统是朗肯动力循环和吸收式制冷循环的集成。通过能量和火用热力学分析,并进行了全面的参数研究,以研究废气入口温度,夹点和气体成分对燃料的能效,电冷比和火用效率的影响。热电联产循环和每个成分的火用破坏。分析中考虑了比热随废气成分和温度的变化,以供进一步讨论。随着废气入口温度的升高,第一律效率降低,而功率/冷比和火用效率提高。功率-冷比和第二定律效率等参数随着夹点的增加而减小,而第一定律效率则增加。火用效率随废气的气体成分和氧气含量而显着变化。从本能角度来看,将废气近似为空气,空气标准分析会导致热电联产循环性能的低估或高估。火用分析表明在蒸汽产生过程中最大火用被破坏;约占整个系统总火用破坏的40%。系统各部分的火用破坏随排气入口温度和夹点的变化而显着变化。从本能的角度出发,本分析提供了有关成分,废气温度和夹点对基于废热回收的热电联产系统性能的影响的更多信息。

著录项

  • 来源
    《Journal of Energy Resources Technology》 |2009年第2期|27-35|共9页
  • 作者

    A. Khaliq; R. Kumar; I. Dincer;

  • 作者单位

    Faculty of Engineering and Applied Science, University of Ontario Institute of Technology, 2000 Simcoe Street, N. Oshawa, ON, LIH 7K4, Canada;

    Amity School of Engineering and Technology, GGSIPU, New Delhi 110061, India;

    Faculty of Engineering and Applied Science, University of Ontario Institute of Technology, 2000 Simcoe Street, North Oshawa, ON, LIH 7K4, Canada;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    efficiency; energy; exergy; cogeneration; refrigeration; power; heat recovery;

    机译:效率;能源;火用热电联产冷藏;功率;热回收;
  • 入库时间 2022-08-18 00:31:00

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