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首页> 外文期刊>International journal of hydrogen energy >Design and performance analysis of a de-coupled solid oxide fuel cell gas turbine hybrid
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Design and performance analysis of a de-coupled solid oxide fuel cell gas turbine hybrid

机译:解耦固体氧化物燃料电池燃气轮机的设计与性能分析

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Hybrid solid oxide fuel cells (SOFC) cycles of varying complexity are widely studied for their potential efficiency, carbon recovery and co-production of chemicals. This study introduces an alternative de-coupled fuel cell-gas turbine hybrid arrangement that retains the high efficiency thermal integration of a topping cycle without the high temperature heat exchanger of a bottoming cycle. The system utilizes a solid-state oxygen transport membrane to divert 30%-50% of the oxygen from the turbine working fluid to the intermediate temperature SOFC. Thermodynamic modeling delineates design trade-offs and identifies a flexible operating regime with peak fuel-to-electric efficiency of 75%. Co-production of electricity and high purity hydrogen result in net energy conversion efficiencies greater than 80%. The potential to retrofit existing turbine systems, particularly micro-turbines and stand-by `pecker' plants, with minimal impact to compressor stability or transient response is a promising pathway to hybrid fuel cell/turbine development that does not require turbomachinery modification. (C) 2020 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:杂化固体氧化物燃料电池(SOFC)的不同复杂性循环被广泛研究了化学品的潜在效率,碳回收和共同生产。该研究介绍了一种替代的解耦燃料电池 - 燃气涡轮机混合装置,其保持高效率的顶部循环的高效热集成,而无需底循环的高温热交换器。该系统利用固态的氧气输送膜将30%-50%从涡轮机工作流体转移到中间温度SOFC。热力学建模描绘设计权衡,并识别灵活的操作制度,峰值燃料电效率为75%。电力和高纯度氢的共同生产导致净能量转换效率大于80%。改进现有的涡轮机系统,特别是微型涡轮机和备用“啄木鸟”植物的潜力,对压缩机稳定性或瞬态反应的影响最小是对混合燃料电池/涡轮发育不需要涡轮机械修改的有望的途径。 (c)2020氢能量出版物LLC。 elsevier有限公司出版。保留所有权利。

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