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Molten-salt fuel cells-Technical and economic challenges

机译:熔盐燃料电池-技术和经济挑战

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This paper presents a personal view of the status and research needs of the MCFC and other molten-salt fuel cells. After an overview of current MCFC performance, compared with performance and cost of other fuel cells, improvements in power density and lifetime as well as cost reduction are identified as key priorities to accelerate the commercialization of the MCFC. In spite of its unfavorable public image (compared to, in particular, PEMFC and planar SOFC) MCFC technology has progressed steadily and cost reduction has been significant. Large-scale commercialization, especially in the distributed generation and cogeneration market, remains a possibility but its chances are highly dependent on a forceful and consistent energy policy, for example taking into account the externalities associated with various modes of electric power production from fossil fuels. In spite of steady improvements in performance, important defects in fundamental knowledge remain about wetting properties, oxygen reduction kinetics, corrosion paths and control mechanisms. These must be addressed to stimulate further simplification of design and find solutions to lifetime issues. Recently, alternative concepts of molten-salt fuel cells have been capturing attention. The direct carbon fuel cell (DCFC), reviving an old concept, has caught the attention of energy system analysts and some important advances have been made in this technology. Direct CO and CH4 oxidation have also been a focus of study. Finally, the potential of nanotechnology for high-temperature fuel cells should not be a priori excluded.
机译:本文对MCFC和其他熔融盐燃料电池的现状和研究需求提出了个人看法。在概述了当前MCFC性能之后,与其他燃料电池的性能和成本相比,提高功率密度和寿命以及降低成本被视为加速MCFC商业化的关键重点。尽管其公众形象不利(特别是与PEMFC和平面SOFC相比),MCFC技术仍在稳步发展,并且降低了成本。大规模商业化(尤其是在分布式发电和热电联产市场中)仍然是可能的,但是其机会高度依赖于有力且一致的能源政策,例如,考虑到与化石燃料发电的各种模式相关的外部性。尽管性能不断提高,但在润湿性,氧还原动力学,腐蚀路径和控制机制等方面的基础知识仍存在重要缺陷。必须解决这些问题,以促进设计的进一步简化并找到使用寿命问题的解决方案。近来,熔融盐燃料电池的替代概念已引起关注。直接碳燃料电池(DCFC)复兴了一个古老的概念,引起了能源系统分析家的关注,并且该技术已经取得了一些重要的进展。直接CO和CH4氧化也已成为研究重点。最后,不应将纳米技术在高温燃料电池中的潜力先验地排除在外。

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