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Residential fuel cell energy systems performance optimization using 'soft computing' techniques

机译:使用“软计算”技术优化住宅燃料电池能源系统的性能

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Stationary residential and commercial fuel cell cogeneration systems have received increasing attention by the general public due to their great potential to supply both thermal and electrical loads to the dwellings. The reported number of field demonstration trials with grid connected and off-grid applications are under way and valuable and unique data are collected to describe the system's performance. While the single electricity mode of operation is relatively easy to introduce, it is characterized with relatively low efficiency performance (20-35%). The combined heat and power generation mode is more attractive due to higher efficiency +60%, better resources and fuel utilization, and the advantage of using a compact one box/single fuel approach for supplying all energy needs of the dwellings. While commercial fuel cell cogeneration applications are easy to adopt in combined mode of operation, due to the relatively stable base power/heat load throughout the day, the residential fuel cell cogeneration systems face a different environment with uneven load, usually two peaks in the morning and in the evening and the fact that the triple load: space, water and power occur at almost the same time. In most of the cases, the fuel cell system is not able to satisfy the triple demand and additional back up heater/burner is used. The developed "soft computing" control strategy for FC integrated systems would be able to optimize the combined system operation while satisfying combination of demands. The simulation results showed that by employing a generic fuzzy logic control strategy the management of the power supply and thermal loads could be done appropriately in an optimal way, satisfying homeowners' power and comfort needs.
机译:固定式住宅和商用燃料电池热电联产系统因其向住宅提供热负荷和电负荷的巨大潜力而​​受到了越来越多公众的关注。据报道,并网和离网应用的现场演示试验数量正在进行,并且收集了宝贵的独特数据来描述系统的性能。虽然单电操作模式相对容易引入,但其特点是效率表现相对较低(20%至35%)。热电联产模式更具吸引力,这是因为效率提高了60%,资源和燃料利用率更高,并且采用了紧凑的单箱/单燃料方法来满足住宅的所有能源需求。尽管商用燃料电池热电联产应用很容易在组合操作模式下采用,但由于全天的基本电力/热负荷相对稳定,民用燃料电池热电联产系统面临着负荷不均的不同环境,通常在早晨出现两个高峰到了晚上,三重负荷:空间,水和电力几乎同时发生。在大多数情况下,燃料电池系统无法满足三重需求,因此需要使用额外的备用加热器/燃烧器。为FC集成系统开发的“软计算”控制策略将能够优化组合的系统操作,同时满足需求的组合。仿真结果表明,通过采用通用的模糊逻辑控制策略,可以以最佳方式适当地进行电源和热负荷的管理,从而满足房主的功率和舒适性需求。

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