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首页> 外文期刊>Journal of Electrochemical Energy Conversion and Storage >Performance Evaluation of an SOFC-GT Hybrid System With Ejectors for the Anode and Cathode Recirculations
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Performance Evaluation of an SOFC-GT Hybrid System With Ejectors for the Anode and Cathode Recirculations

机译:具有喷射器的SOFC-GT混合系统对阳极和阴极再循环的性能评估

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摘要

The ejectors used for the fuel cell recirculation are more reliable and low cost in maintenance than high-temperature blowers. In this paper, an anode and cathode recirculation scheme, equipped with ejectors, was designed in a solid oxide fuel cell-gas turbine (SOFC-GT) hybrid system. The ejector model, SOFC model, and other component models and the validation were conducted to investigate the performance of the hybrid system with anode and cathode ejectors. The geometric parameters of the ejectors were designed to perform the anode and cathode recirculation loops according to the design conditions of the hybrid system with a blower-based recirculation loop. The cathode ejector geometries are much larger than the anode ejector. In addition, the sensitivity analysis of the primary fluid for the standalone anode and cathode ejectors is investigated. The results show that the ejector can recirculate more secondary fluid by reducing the ejector outlet pressure. Then, the anode and cathode ejectors were integrated into the SOFC-GT hybrid system. A blower gets involved downstream, and the compressor is necessary to avoid high expensive cost of redesigning compressor. The off-design and dynamic performance were characterized after integrating the anode and cathode ejectors into the hybrid system. The dynamic and off-design performances show that the designed ejectors are effectively integrated into the anode and cathode recirculation loops to replace the blower-based recirculation loops. The safety range of relative fuel flow rate is 0.62-1.22 in the fixed rotational speed strategy, and it is 0.53-1.1 in the variable rotational speed strategy. The variable rotational speed strategy can ensure higher system efficiency, which is more than 61% at a part-load condition.
机译:用于燃料电池再循环的喷射器比高温鼓风机更可靠,维护成本低。在本文中,设计有带有喷射器的阳极和阴极再循环方案,设计在固体氧化物燃料电池 - 燃气轮机(SOFC-GT)混合系统中设计。采用喷射器模型,SOFC型号和其他组件模型和验证,以研究混合系统与阳极和阴极喷射器的性能。设计弹射器的几何参数根据具有基于鼓风机的再循环回路的混合系统的设计条件来执行阳极和阴极再循环回路。阴极喷射器几何形状远大于阳极喷射器。另外,研究了独立阳极和阴极喷射器的主流体的敏感性分析。结果表明,喷射器可以通过减小喷射器出口压力来再循环更多的二次流体。然后,将阳极和阴极喷射器集成到SOFC-GT混合系统中。鼓风机涉及下游,压缩机是必要的,以避免重新设计压缩机的高昂贵成本。在将阳极和阴极喷射器集成到混合系统之后,表征了非设计和动态性能。动态和偏面的设计表明,设计的喷射器有效地集成到阳极和阴极再循环环中以取代基于鼓风机的再循环回路。固定转速策略中相对燃料流量的安全范围为0.62-1.22,在可变转速策略中为0.53-1.1。变量转速策略可以确保更高的系统效率,在部件负载条件下大于61%。

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