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A novel electrical energy storage system based on a reversible solid oxide fuel cell coupled with metal hydrides and waste steam

机译:一种基于可逆固体氧化物燃料电池,金属氢化物和废蒸汽的新型电能存储系统

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摘要

Reversible solid oxide fuel cells (RSOFCs), with high energy densities, long operating times, and intermediate power ratings, have become promising devices for renewable energy storage. A metal hydride (MH) tank is a prospective thermochemical heat and hydrogen storage unit. External heat source such as waste steam is a well-known efficiency booster for high temperature electrolysis system. Here, we propose a novel RSOFC system coupled with MH and waste steam. The MH materials of MgH2-5 at.% V and LaNi5 were used for high-temperature MH (HTMH) case and low-temperature MH (LTMH) case calculations, respectively. We found that, In HTMH case, the H-2 compression power was low, but the MH tank produced steam only during the last 29% of the total absorption time. When the MH tank produced steam, the SOEC mode efficiency increased by 19.3% points. In the SOFC mode, the MH tank stored 76% of heat released from stack, and the system efficiency was lower than stack efficiency by 6% points. The system round trip efficiencies of HTMH system and LTMH system were 45.6% and 48.1%, respectively. For a specific HTMH material, there is an optimal current density in the SOEC mode where heat from MH tank can be used completely and the external heat source is minimal. By choosing appropriate operating strategy or MH material, the high temperature MH can result in a system round-trip efficiency comparable to that of a low temperature MH combined with an external heat utilization system.
机译:具有高能量密度,长工作时间和中等额定功率的可逆固体氧化物燃料电池(RSOFC)已成为可再生能源存储的有前途的设备。金属氢化物(MH)罐是预期的热化学储氢装置。诸如废蒸汽的外部热源是用于高温电解系统的众所周知的效率提升器。在这里,我们提出了一种新颖的RSOFC系统,该系统结合了MH和废蒸汽。 MgH2-5 at。%V和LaNi5的MH材料分别用于高温MH(HTMH)情况和低温MH(LTMH)情况的计算。我们发现,在HTMH情况下,H-2压缩功率较低,但MH储罐仅在总吸收时间的最后29%内产生蒸汽。当MH罐产生蒸汽时,SOEC模式效率提高了19.3%。在SOFC模式下,MH箱存储了烟囱释放的热量的76%,系统效率比烟囱效率低6%。 HTMH系统和LTMH系统的系统往返效率分别为45.6%和48.1%。对于特定的HTMH材料,在SOEC模式下有最佳的电流密度,在这种模式下,可以完全利用MH储罐的热量,而外部热源也很少。通过选择合适的操作策略或MH材料,高温MH可以产生与低温MH与外部热量利用系统相结合的系统往返效率。

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