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Revised Magnetics Performance Factors and Experimental Comparison of High-Flux Materials for High-Current DC–DC Inductors

机译:修正的磁性能因子和大电流DC-DC电感器高通量材料的实验比较

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摘要

High-flux-density materials, such as iron-based amorphous metal and 6.5% silicon steel for gapped inductors, and powdered alloys for gapless inductors, are very competitive for high-power-density inductors. The high-flux-density materials lead to low weight/volume solutions for high-power dc–dc converters used in hybrid-electric and electric vehicles. In this paper, the analytical selection of the magnetic materials is investigated, and modified performance factors are introduced for convection- and conduction-cooled magnetic components. The practical effects of frequency, dc bias, flux-density derating, duty cycle, airgap fringing on the core loss, and thermal configuration based on lamination direction are investigated for iron-based amorphous metal, 6.5% silicon steel, and iron-based powdered alloy material. A 2.5-kW converter is built to verify the optimum material selection and thermal configuration. Analytical, simulation, and experimental results are presented.
机译:高通量密度材料,例如用于间隙电感的铁基非晶态金属和6.5%的硅钢,以及用于无间隙电感器的粉末合金,在高功率密度电感器方面极具竞争力。高通量密度的材料导致混合动力电动汽车中使用的大功率dc-dc转换器的重量/体积低的解决方案。本文研究了磁性材料的分析选择,并介绍了对流冷却和传导冷却的磁性元件的改进性能因子。针对铁基非晶态金属,6.5%硅钢和铁基粉末,研究了频率,直流偏置,磁通密度降额,占空比,气隙边缘对铁损以及基于层压方向的热构型的实际影响。合金材料。内置一个2.5千瓦的转换器,以验证最佳材料选择和热配置。给出了分析,仿真和实验结果。

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