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Thermodynamic and economic analysis of different cogeneration and trigeneration systems based on carbon dioxide vapor compression refrigeration systems

机译:基于二氧化碳蒸汽压缩制冷系统的不同热电化和三通系统的热力学和经济分析

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Carbon dioxide vapor compression refrigeration cycles operating at low evaporator temperatures represent a substantial waste energy recovery potential to generate useful products using the high-temperature carbon dioxide leaving the compressor. Despite this remarkable potential, there are limited investigations about waste energy recovery from these cycles for different applications. Using this as a motivation, in this work, different novel integrated cogeneration and trigeneration configurations are proposed based on a carbon dioxide parallel compression economization-vapor compression refrigeration cycle with a 1000 kW capacity and evaporator temperatures of -35 degrees C to -45 degrees C. The major originality of this work is the proposal and detailed techno-economic evaluation of several feasible cogeneration and trigeneration configurations for different practical applications. Different cycles and components are integrated into the carbon dioxide cycle including single and double stages water-lithium bromide absorption chillers, a single stage ammonia-water absorption refrigeration, a carbon dioxide-water heat exchanger and an organic Rankine cycle. The thermo-economic findings demonstrate that recovering the available thermal energy of carbon dioxide exiting the compressor would be very attractive both thermodynamically and economically to produce several useful outputs. More than 478 kW and 147 kW cooling (air conditioning) and refrigeration effects can be generated using the cogeneration configurations. Also, between 59.52 kW and 185.8 kW power can be generated depending on the configurations and organic fluid used, improving the coefficient of performance up to 18.0%. Moreover, 7763-9360 m(3)/year of domestic hot water can be generated by the trigeneration configurations, reducing the levelized cost of cooling up to 13%.
机译:在低蒸发器温度下操作的二氧化碳蒸汽压缩制冷循环代表了使用远离压缩机的高温二氧化碳产生有用产物的大量废物能量恢复电位。尽管有这种显着的潜力,但对不同应用的这些循环的废能回收有限的调查。在这项工作中使用这一点,在这项工作中,基于二氧化碳平行压缩节电经济化 - 蒸汽压缩制冷循环提出了不同的新型集成热电联产和三通配置,其中1000kW容量和-35℃的蒸发器温度至-45摄氏度。这项工作的主要原创性是针对不同实际应用的几种可行的热电联产和特色配置的提案和详细技术经济评估。将不同的循环和组分集成到二氧化碳循环中,包括单阶段和双阶段水 - 溴化锂吸收冷却器,单级氨 - 吸水制冷,二氧化碳 - 水热交换器和有机朗肯循环。热经济调查结果表明,恢复离开压缩机的二氧化碳的可用热能将非常有吸引力,热力学和经济地产生几种有用的输出。可以使用热电联产配置产生超过478千瓦和147千瓦冷却(空调)和制冷效果。此外,可以根据所用的配置和有机液体产生59.52千瓦和185.8千瓦的电力,从而将性能系数提高至18.0%。此外,7763-9360米(3)/国内热水的年度可以通过Treglemeration配置产生,降低降温的调整成本高达13%。

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