A Comparative Study of Finite Element Method and Hybrid Finite Element Method–Spectral Element Method Approaches Applied to Medium-Frequency Transformers with Foil Windings

J Pub Date : 2023-12-13 DOI:10.3390/j6040041
S. Pourkeivannour, Joost S. B. van Zwieten, L. Friedrich, M. Curti, E. Lomonova
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Abstract

This study aims to improve the computational efficiency of the frequency domain analysis of medium-frequency transformers (MFTs) with the presence of large clearance distances and fine foil windings. The winding loss and magnetic energy in MFTs in the medium-frequency range are calculated utilizing a finite element method (FEM) using common triangular and alternative rectilinear mesh elements. Additionally, in order to improve the computational efficiency of the calculations, a spectral element method (SEM) is coupled with a FEM, thus creating a hybrid FEM–SEM formulation. In such a hybrid approach, the FEM is used to calculate the current density distribution in the two-dimensional (2D) cross-section of the foil conductors to achieve reliable accuracy, and the SEM is adopted in the nonconducting clearance distances of the winding window to reduce the system of equations. The comparative analysis of the calculated resistance and reactance of the under-study models showed that the FEM with rectilinear mesh elements and the FEM–SEM model outperformed the FEM with triangular mesh elements in terms of accuracy and computational cost. The hybrid FEM–SEM model enables a reduced system of equations for modeling the electromagnetic behavior of MFTs. This research provides valuable insights into both the computational approaches and meshing challenges in the analysis of MFTs and offers a foundation for future research on the design and optimization of MFTs.
应用于带箔绕组中频变压器的有限元法和有限元法-谱元法混合方法比较研究
本研究旨在提高存在大间隙距离和细箔绕组的中频变压器(MFT)频域分析的计算效率。研究采用有限元法(FEM),使用常见的三角形网格元素和替代的直线网格元素,计算了中频范围内中频变压器的绕组损耗和磁能。此外,为了提高计算效率,还将谱元法 (SEM) 与有限元法结合起来,从而创建了 FEM-SEM 混合公式。在这种混合方法中,有限元用于计算箔导体二维(2D)横截面上的电流密度分布,以达到可靠的精度,而 SEM 则用于计算绕组窗口的非导电间隙距离,以减少方程系统。对所研究模型的电阻和电抗计算结果进行的对比分析表明,采用直线网格元素的有限元模型和 FEM-SEM 模型在精度和计算成本方面均优于采用三角形网格元素的有限元模型。FEM-SEM 混合模型可减少用于 MFT 电磁行为建模的方程系统。这项研究为 MFT 分析中的计算方法和网格划分挑战提供了宝贵的见解,并为未来 MFT 的设计和优化研究奠定了基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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