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Thermodynamic analysis of fuel cell combined cooling heating and power system integrated with solar reforming of natural gas

机译:天然气太阳能重整燃料电池组合冷却加热电力系统热力学分析

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Hybrid natural gas combined cooling, heating, and power (CCHP) systems integrated with solar technologies offer the efficient use of distributed energy resources for reducing the use of fossil fuels and greenhouse gas emissions. This paper proposes a novel CCHP system, using the phosphoric acid fuel cell (PAFC) as the prime mover, integrated with the natural gas reforming with solar energy assistance. Their respective thermodynamic models are constructed for simulation of the system thermodynamic performance. The simulation results demonstrate that the energy efficiencies of the hybrid system with solar energy assistance are 55.12% for the heater mode and 66.77% for the chiller mode, while the exergy efficiencies are 32.87% and 31.59%, respectively. Similarly, when solar energy is not available, its energy efficiencies are 59.24% and 69.18%, while its exergy efficiencies are 40.09% and 39.01%, respectively. In the PAFC-CCHP hybrid system, the exergy efficiencies are key components in the overall efficiency, and the efficiencies with and without solar energy are 29.34% and 36.95%, respectively. Solar energy and exergy share is employed to analyze the solar energy contribution, and they are 36.1% and 35.6%, respectively. Meanwhile, the parametric analysis is also carried out to evaluate the effects of key parameters on the performance. The results show that increasing the reforming temperature, influenced by solar energy, improves the natural gas conversion and boosts the hydrogen concentration of the syngas fed into the PAFC, which increases the overall exergy efficiency. However, the effect of the reforming temperature is reduced when the reforming temperature is higher than 1073.15 K.
机译:与太阳能技术集成的混合天然气组合冷却,加热和功率(CCHP)系统提供了分布式能源的有效利用,以减少化石燃料和温室气体排放。本文提出了一种新型CCHP系统,使用磷酸燃料电池(PAFC)作为主要动机,与太阳能辅助的天然气重整相结合。它们各自的热力学模型构造用于模拟系统热力学性能。仿真结果表明,加热器模式的混合系统的能量效率为55.12%,冷却模式为66.77%,分别为32.87%和31.59%。同样,当太阳能不可用时,其能量效率分别为59.24%和69.18%,而其无法效率分别为40.09%和39.01%。在PAFC-CCHP混合系统中,漏洞效率是整体效率的关键组成部分,而且具有太阳能的效率分别为29.34%和36.95%。采用太阳能和低级股票分析太阳能贡献,分别为36.1%和35.6%。同时,还进行了参数分析来评估关键参数对性能的影响。结果表明,增加受太阳能影响的重整温度提高了天然气转化,并提高了加入PAFC的合成气的氢浓度,从而提高了整体高效率。然而,当重整温度高于1073.15k时,重整温度的效果降低。

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