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首页> 外文期刊>Journal of Fuel Cell Science and Technology >Implementation of a Fuel Cell System Model Into Building Energy Simulation Software IDA-ICE
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Implementation of a Fuel Cell System Model Into Building Energy Simulation Software IDA-ICE

机译:燃料电池系统模型在建筑能耗模拟软件IDA-ICE中的实现

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Due to constantly increasing electricity consumption, networks are becoming overloaded and unstable. Decentralization of power generation using small-scale local cogeneration plants becomes an interesting option to improve economy and energy reliability of buildings in terms of both electricity and heat. It is expected that stationary applications in buildings will be one of the most important fields for fuel cell systems. In northern countries, like Finland, efficient utilization of heat from fuel cells is feasible. Even though the development of some fuel cell systems has already progressed to a field trial stage, relatively little is known about the interaction of fuel cells with building energy systems during a dynamic operation. This issue could be addressed using simulation techniques, but there has been a lack of adequate simulation models. International cooperation under IEA/ECBCS/Annex 42 aims at filling this gap, and the study presented in this paper is part of this effort. Our objective was to provide the means for studying the interaction between a building and a fuel cell system by incorporating a realistic fuel cell model into a building energy simulation. A two-part model for a solid-oxide fuel cell system has been developed. One part is a simplified model of the fuel cell itself. The other part is a system level model, in which a control volume boundary is assumed around a fuel cell power module and the interior of it is regarded as a "black box." The system level model has been developed based on a specification defined within Annex 42. The cell model (programed in a spreadsheet) provides a link between inputs and outputs of the black box in the system model. This approach allows easy modifications whenever needed. The system level model has been incorporated into the building simulation tool IDA-ICE (Indoor Climate and Energy) using the neutral model format language. The first phase of model implementation has been completed. In the next phase, model validation will continue. The final goal is to create a comprehensive but flexible model, which could serve as a reliable tool to simulate the operation of different fuel cell systems in different buildings.
机译:由于不断增加的电力消耗,网络变得过载和不稳定。使用小型本地热电联产发电厂进行权力下放成为改善建筑物在电和热方面的经济性和能源可靠性的有趣选择。预计建筑物中的固定应用将成为燃料电池系统最重要的领域之一。在像芬兰这样的北方国家,有效利用燃料电池产生的热量是可行的。即使某些燃料电池系统的开发已经进入现场试验阶段,但在动态运行过程中,有关燃料电池与建筑能源系统之间相互作用的信息知之甚少。可以使用仿真技术解决此问题,但是一直缺乏适当的仿真模型。 IEA / ECBCS /附件42下的国际合作旨在填补这一空白,本文介绍的研究是这项工作的一部分。我们的目标是通过将逼真的燃料电池模型纳入建筑物能源模拟中,为研究建筑物与燃料电池系统之间的相互作用提供一种手段。已经开发了用于固体氧化物燃料电池系统的两部分模型。一部分是燃料电池本身的简化模型。另一部分是系统级模型,其中在燃料电池电源模块周围假定了控制体积边界,并且将其内部视为“黑匣子”。系统级模型是根据附件42中定义的规范开发的。单元模型(在电子表格中编程)提供了系统模型中黑匣子的输入和输出之间的链接。这种方法允许在需要时轻松进行修改。使用中性模型格式语言,系统级模型已合并到建筑物模拟工具IDA-ICE(室内气候和能源)中。模型实施的第一阶段已经完成。在下一阶段,模型验证将继续。最终目标是创建一个全面而灵活的模型,该模型可以用作模拟不同建筑物中不同燃料电池系统运行的可靠工具。

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