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基于等效磁路网络法的均匀正交磁场对环形磁芯等效电感影响的研究

王绍宇,杨勇,张明

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王绍宇, 杨勇, 张明. 基于等效磁路网络法的均匀正交磁场对环形磁芯等效电感影响的研究[J]. 强激光与粒子束. doi: 10.11884/HPLPB202335.230155
引用本文: 王绍宇, 杨勇, 张明. 基于等效磁路网络法的均匀正交磁场对环形磁芯等效电感影响的研究[J]. 强激光与粒子束.doi:10.11884/HPLPB202335.230155
Wang Shaoyu, Yang Yong, Zhang Ming. Study of the influence of uniform orthogonal background magnetic field on the equivalent inductance of toroidal magnetic cores based on magnetic equivalent circuit network method[J]. High Power Laser and Particle Beams. doi: 10.11884/HPLPB202335.230155
Citation: Wang Shaoyu, Yang Yong, Zhang Ming. Study of the influence of uniform orthogonal background magnetic field on the equivalent inductance of toroidal magnetic cores based on magnetic equivalent circuit network method[J].High Power Laser and Particle Beams.doi:10.11884/HPLPB202335.230155

基于等效磁路网络法的均匀正交磁场对环形磁芯等效电感影响的研究

doi:10.11884/HPLPB202335.230155
基金项目:国家重点研发计划项目(2017YFE0301803);国家自然科学基金项目(51821005)
详细信息
    作者简介:

    王绍宇,shaoyuwang@hust.edu.cn

    通讯作者:

    杨 勇,yangyong_hust@hust.edu.cn

  • 中图分类号:TM552

Study of the influence of uniform orthogonal background magnetic field on the equivalent inductance of toroidal magnetic cores based on magnetic equivalent circuit network method

  • 摘要:电源中的磁性元件对外部磁场天然敏感,其工作特性直接影响电源的输出特性。实现背景磁场的建模是研究电源中磁性元件受强杂散磁场干扰问题的重要前提,但目前关注这一应用场景的相关研究较少,且常用的电磁场分析方法难以兼顾计算的精度和效率。基于等效磁路网络法提出了一种杂散磁场效应的分析方法,该法将研究对象等效生成磁路单元,离散形成网络模型,并通过求解等效磁路系统方程得到模型的场量分布。以一款具体的环形铁氧体磁芯为例,利用等效磁路网络法计算了环形磁芯在直流激励和均匀正交磁场下的场量分布,分析了背景磁场对其等效电感的影响。通过对比等效磁路网络法与有限元法的计算结果,验证了所提分析方法的准确性与高效性,表明了该方法适用于电源受背景磁场干扰问题的分析。
  • 图 1等效磁通管及其等效磁路模型

    Figure 1.Equivalent flux tube and magnetic equivalent circuit model

    图 2有源元件的等效磁路单元

    Figure 2.Magnetic equivalent circuit unit of active components

    图 33D等效磁路单元

    Figure 3.3-D magnetic equivalent circuit unit

    图 4环形磁芯及其主要尺寸

    Figure 4.Toroidal magnetic core and its main dimensions

    图 525 ℃时环形磁芯材料的B-H曲线与μr-H曲线

    Figure 5.B-Hcurve andμr-Hcurve of the material of the toroidal magnetic core at 25 ℃

    图 6基于等效磁路网络法的环形磁芯模型

    Figure 6.Toroidal magnetic core model based on MECN

    图 7环形磁芯模型的求解迭代步骤

    Figure 7.Iterative steps for solving the toroidal magnetic core model

    图 8环形磁芯模型的电感值随空气域的变化曲线

    Figure 8.Variation curve of inductance value of toroidal magnetic core model with air domain

    图 9MECN收敛曲线

    Figure 9.Convergence curve of MECN

    图 11环形磁芯模型的相对磁导率分布

    Figure 11.Relative permeability distribution of the toroidal magnetic core model

    图 12环形磁芯模型的沿均匀正交磁场方向的磁感应强度矢量分布

    Figure 12.Vector distribution of magnetic induction along the direction of the uniform orthogonal magnetic field of the toroidal magnetic core model

    图 13环形磁芯模型的磁感应强度大小分布

    Figure 13.Magnetic induction intensity distribution of the toroidal magnetic core model

    图 10基于有限元法的环形磁芯模型

    Figure 10.Toroidal magnetic core model based on FEA

    图 14MECN与FEA的等效电感计算结果对比

    Figure 14.Comparison of equivalent inductance calculation results between MECN and FEA

    表 1MECN和FEA的计算资源比较

    Table 1.Computational resource comparison of MECN and FEA

    method comparison term
    number of grids simulation time/s
    MECN 4015 1.97
    FEA 112311 135
    下载: 导出CSV
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出版历程
  • 收稿日期:2023-05-30
  • 修回日期:2023-08-21
  • 录用日期:2023-07-21
  • 网络出版日期:2023-08-26

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