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Optimization of equipment capacity and an operational method based on cost analysis of a fuel cell microgrid

机译:基于燃料电池微电网成本分析的设备产能优化及运行方法

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A microgrid requires a stable supply of electric power and heat, which is achieved by the cooperative operation of two or more pieces of equipment. The equipment capacity and the operational method of the equipment were optimized using a newly developed orthogonal array-GA (genetic algorithm) hybrid method for an independent microgrid accompanied by a fuel cell cascade system, solar water electrolysis, battery, and heat storage. This type of system had not been hardly developed until now. The objective function of the proposed system was the minimization of the total amount of equipment and fuel cost over ten years. For the first step in the proposed analysis method, the capacity of each piece of equipment and the operational method, which are considered to be close to the optimal solution of the system, are combined using the orthogonal array and factorial-effect chart, which are an experimental design technique. In the next step, the combination described above provides the initial values to the GA, and the GA searches for the optimal capacity and operational method for each piece of equipment in question. Compared with a simple GA, the convergence characteristic improves greatly using the proposed analysis method developed in this study.
机译:微电网需要稳定的电力和热量供应,这可以通过两个或多个设备的协同操作来实现。使用新开发的正交阵列-GA(遗传算法)混合方法优化了设备的容量和设备的运行方法,该方法适用于独立的微电网,并配有燃料电池级联系统,太阳能电解,电池和储热装置。到目前为止,几乎没有开发过这种类型的系统。拟议系统的目标功能是在十年内将设备总数和燃料成本降至最低。对于所提出的分析方法的第一步,使用正交阵列和阶乘效应图将被认为接近系统最佳解决方案的每台设备的容量和操作方法进行组合,实验设计技术。在下一步中,上述组合会向GA提供初始值,然后GA会为每个相关设备搜索最佳容量和操作方法。与简单的遗传算法相比,使用本研究提出的分析方法可以大大提高收敛性。

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