Modeling high-frequency multiwinding magnetic components using finite-element analysis

被引:47
|
作者
Asensi, Rafael [1 ]
Prieto, Roberto [1 ]
Cobos, Jose A. [1 ]
Uceda, Javier [1 ]
机构
[1] Univ Politecn Madrid, Div Ingn Elect, E-28006 Madrid, Spain
关键词
DC-DC power conversion; finite-element methods; inductors; modeling; voltage transformers;
D O I
10.1109/TMAG.2007.903162
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
This paper presents a magnetic component equivalent circuit as well as a methodology to extract its parameters by using a finite-element analysis tool. The model is valid for any kind of magnetic component-transformers and gapped and nongapped inductors-and takes into account frequency and geometry effects such as skin, proximity, interleaving, gap, and end effects. An additional model for capacitive effects may be coupled with the previous one to obtain a more precise result. The impedances in this model represent not only the self terms, but also all mutual terms shared between the windings. Because the simplification of concentrating impedances in one winding is not invoked, simultaneous conduction of all windings (such as forward-like converters) or in alternate conduction of the windings (such as flyback-like converters) can be accurately simulated. The parameters of these self and mutual impedances. are frequency dependent, so the model represents the frequency behavior of windings in detail. This allows simulating components with nonsinusoidal currents like the ones present in switched-mode power supplies, provided there is no saturation of magnetic materials. This is not a serious limitation of the model because this kind of power supply works in linear (no-saturation) mode. When there is saturation, the core model determines the component behavior. Applying the model to several actual components has shown its usefulness and accuracy. Details concerning model parameters extraction are presented here with simulation and measurement results.
引用
收藏
页码:3840 / 3850
页数:11
相关论文
共 50 条
  • [41] SEISMIC MODELING USING FINITE-ELEMENT METHODS
    MARFURT, KJ
    [J]. GEOPHYSICS, 1985, 50 (07) : 1192 - 1193
  • [42] Finite-element modeling and analysis in nanomedicine and dentistry
    Choi, Andy H.
    Conway, Richard C.
    Ben-Nissan, Besim
    [J]. NANOMEDICINE, 2014, 9 (11) : 1681 - 1695
  • [43] FINITE-ELEMENT MODELING AND ANALYSIS LANGUAGE FOR ENGINEERS
    不详
    [J]. NAVAL ARCHITECT, 1979, (01): : 32 - 33
  • [44] CONSTITUTIVE MODELING OF CONCRETE IN FINITE-ELEMENT ANALYSIS
    BUYUKOZTURK, O
    SHAREEF, SS
    [J]. COMPUTERS & STRUCTURES, 1985, 21 (03) : 581 - 610
  • [45] High-throughput finite-element design of dielectric composites for high-frequency copper clad laminates
    Wang, Jia-Cheng
    Shen, Zhong-Hui
    Jiang, Jian-Yong
    Wang, Jian
    Zhang, Xin
    Shen, Jie
    Shen, Yang
    Chen, Wen
    Chen, Long-Qing
    Nan, Ce-Wen
    [J]. COMPOSITES SCIENCE AND TECHNOLOGY, 2022, 225
  • [46] ANALYSIS OF MECHANICAL LIMITATIONS OF HIGH-POWER PIEZOELECTRIC TRANSDUCERS USING FINITE-ELEMENT MODELING
    DUBUS, B
    DEBUS, JC
    DECARPIGNY, JN
    BOUCHER, D
    [J]. ULTRASONICS, 1991, 29 (03) : 201 - 207
  • [47] FINITE-ELEMENT ELASTIC - PLASTIC ANALYSIS OF LMFBR COMPONENTS
    LEVY, A
    PIFKO, A
    ARMEN, H
    [J]. NUCLEAR ENGINEERING AND DESIGN, 1978, 45 (02) : 411 - 418
  • [48] Finite-element analysis of temperature field of PCB and components
    Li, Xiaoming
    Lu, Shanwei
    Gao, Zexi
    [J]. Beijing Hangkong Hangtian Daxue Xuebao/Journal of Beijing University of Aeronautics and Astronautics, 2000, 26 (01): : 5 - 7
  • [49] APPLICATION OF FINITE-ELEMENT METHOD OF ANALYSIS TO CERAMIC COMPONENTS
    VISSER, C
    LIEN, YS
    SCHALLER, R
    [J]. AMERICAN CERAMIC SOCIETY BULLETIN, 1973, 52 (08): : 645 - 645
  • [50] Biomechanics of the rostrum in crocodilians: A comparative analysis using finite-element modeling
    Mchenry, Colin R.
    Clausen, Philip D.
    Daniel, Willlkm J. T.
    Meers, Mason B.
    Pendharkar, Atul
    [J]. ANATOMICAL RECORD PART A-DISCOVERIES IN MOLECULAR CELLULAR AND EVOLUTIONARY BIOLOGY, 2006, 288A (08): : 827 - 849