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Maximum power density analyses of a novel hybrid system based upon solid oxide fuel cells, vacuum thermionic generators and thermoelectric generators

机译:基于固体氧化物燃料电池,真空热电因发生器和热电发电机的新型混合动力系统的最大功率密度分析

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Apart from electricity, solid oxide fuel cell (SOFC) generates a great deal of high-grade exhaust heat, which must be immediately removed to guarantee SOFC's normal opera-tion. To harvest the exhaust heat and improve the overall energy conversion efficiency, a new hybrid system model based upon a SOFC, a vacuum thermionic generator (VTIG) and a thermoelectric generator (TEG) is first proposed. Considering the main thermodynamic-electrochemical irreversible effects, the performance indicators assessing the whole sys-tem performance are mathematically derived. In comparison with the performance of sole SOFC, the effectiveness and feasibility of the presented system are verified. Numerical calculation examples illustrate that maximum achievable power density (MAPD) and its corresponding efficiency, exergetic efficiency and exergy destruction rate are, respectively, 26.8%, 9.8%, 9.8% and 8.8% larger than that of the stand-alone SOFC. Exhaustive sensitivity analyses are further conducted to investigate the impacts of various parameters on the tri-generation system performance. Results indicate that the grain size and average pore diameter of electrodes in SOFC and the thermoelectric element number in TEG can be optimized to maximize the hybrid system power density. (c) 2021 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:除了电力外,固体氧化物燃料电池(SOFC)产生大量的高档废热,必须立即去除,以保证SOFC的正常操作。为了收获废热并提高整体能量转换效率,首先提出基于SOFC,真空热原发生机(VTIG)和热电发电机(TEG)的新的混合系统模型。考虑到主要热力学 - 电化学不可逆转效果,评估整个系统性能的性能指标是在数学衍生出来的。与唯一SOFC的性能相比,验证了所呈现的系统的有效性和可行性。数值计算实施例说明了最大可实现的功率密度(MAPD)及其相应的效率,逐步效率和漏洞破坏率分别比单独单独的SOFC的26.8%,9.8%,9.8%和8.8%。进一步进行详尽的敏感性分析,以研究各种参数对三代系统性能的影响。结果表明,TEG中的SOFC中电极的晶粒尺寸和平均孔径可以优化,以最大化混合系统功率密度。 (c)2021氢能出版物LLC。 elsevier有限公司出版。保留所有权利。

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