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Optimum Design of Dry-Type Air-Gapped Iron-Core Reactor Based on Dynamic Programming and Circular Traversing Algorithm

机译:基于动态规划和圆形横向算法的干式空隙铁芯反应器的优化设计

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This paper considers the dry-type air-gapped iron-core reactor optimum design problem. The main goal of this work is to obtain optimum iron-core cross-section and winding construction. First, dynamic programming algorithm is studied and used to maximize iron-core effective cross-sectional area under constraints such as core diameter, lamination stage number, the minimum lamination width and some additional constraints etc. Then, circular traversing algorithm is proposed to design winding construction including the determination of the number of parallel wires, wire gauge and arrangement mode, the number of the winding packages and the number of layers in each package under constraints such as power loss and temperature rise. Last, the proposed optimization methodology has been implemented into the software for optimum design of dry-type air-gapped iron-core reactor. The design results obtained with the developed software in this paper are proved to be satisfied.
机译:本文考虑了干式空隙铁芯反应堆优化设计问题。这项工作的主要目标是获得最佳的铁芯横截面和绕组结构。首先,研究了动态编程算法,并用于最大化铁芯有效的横截面积,如核心直径,层压阶段数,最小叠片宽度和一些附加约束等。然后,提出了循环遍历算法以设计绕组构造包括确定平行线,线尺和布置模式的数量,卷绕封装的数量和每个封装中的层数在诸如功率损耗和温度升高之类的约束下。最后,所提出的优化方法已经实施到软件中,以实现干式空隙铁芯反应器的最佳设计。据证明,在本文中获得的设计结果得到了满足。

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