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Performance assessment of an advanced triple-cycle system based upon solid oxide fuel cells, vacuum thermionic generators and absorption refrigerators

机译:基于固体氧化物燃料电池,真空热原发生机和吸收冰箱的高级三循环系统的性能评估

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摘要

In addition to generate electricity, solid oxide fuel cells also produce a considerable quantity of high-quality waste heat. To harvest the waste heat, an advanced triple-cycle system based upon solid oxide fuel cells, vacuum thermionic generators and absorption refrigerators is theoretically put forward. Assuming that the main irreversible losses within the system are thermodynamic and electrochemical losses, the performance parameters mathematically evaluating the whole system are specified under different operating conditions. The effectiveness is also demonstrated through performance comparisons between the proposed system and the stand-alone solid oxide fuel cell system. Numerical calculations show that the maximum attainable power density and its corresponding efficiency allow 20.3% and 18.4% larger than that of the stand-alone solid oxide fuel cell system, respectively. Comprehensive parametric studies are further undertaken to reveal the influences of some decisive design parameters and operating conditions on the triple-cycle system performance. Results show that the microstructure parameters of the solid oxide fuel cell and the anode temperature of the vacuum thermionic generator can be optimally designed to maximize the power density of the triple-cycle system. The vacuum thermionic generator can be treated as the alternative intermediate cycle for SOFC based triple-cycle systems.
机译:除了发电之外,固体氧化物燃料电池还产生相当大量的高质量废热。为了收获废热,理论上提出了一种基于固体氧化物燃料电池,真空热原发生机和吸收冰箱的先进的三循环系统。假设系统内的主要不可逆转损失是热力学和电化学损失,在不同的操作条件下规定了数学上评估整个系统的性能参数。还通过所提出的系统与独立固体氧化物燃料电池系统之间的性能比较来证明有效性。数值计算表明,最大可达到的功率密度及其相应的效率分别比单独的固体氧化物燃料电池系统大的20.3%和18.4%。进一步开展综合参数研究,揭示了一些决定性设计参数和操作条件对三循环系统性能的影响。结果表明,真空热发生器的固体氧化物燃料电池和阳极温度的微观结构参数可以最佳地设计成最大化三循环系统的功率密度。真空热量发生器可以作为基于SOFC的三循环系统的替代中间循环处理。

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