Design, analysis and simulation of magnetic biased inductors with saturation-gap

A. Aguilar, S. Munk‐Nielsen
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引用次数: 7

Abstract

Permanent magnet biasing, is a known technique for increasing the energy storage capability of inductors operating in DC applications. The opposing flux introduced by a permanent magnet will extend the saturation flux limit of a given magnetic material. When full biasing of the core is achieved, the effective saturation current limit of a given inductor is doubled. This results in a smaller requirement in number of turns and area cross-section, allowing for smaller and/or more efficient inductors. By adding some switching elements, the benefits of biased inductors can also be used in AC applications. This paper presents a review of the scientific literature on biased hybrid inductors and the evolution of the used magnets and cores configurations. A recently developed biasing configuration, the saturation-gap, will also be analyzed and the design parameter will be identified using finite element software. The simulation results will be compared with empirical laboratory measurements on physical units.
具有饱和间隙的偏磁电感器的设计、分析与仿真
永磁体偏置,是一个已知的技术,以增加能量存储能力的电感工作在直流应用。永磁体引入的反向磁通会使给定磁性材料的饱和磁通极限扩大。当磁芯完全偏置时,给定电感的有效饱和电流极限加倍。这导致对匝数和面积横截面的要求更小,允许更小和/或更高效的电感器。通过添加一些开关元件,偏置电感的优点也可以用于交流应用。本文综述了偏置混合式电感的科学文献,并对其磁体和磁芯结构的演变进行了评述。还将分析最近开发的偏置配置,即饱和间隙,并使用有限元软件确定设计参数。模拟结果将与物理单元的经验实验室测量结果进行比较。
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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