Time-Domain Finite-Element Method for Near-Field Applications With Magnetic Metamaterials

被引:1
作者
Gong, Zhi [1 ]
Yang, Shiyou [1 ]
机构
[1] Zhejiang Univ, Coll Elect Engn, Hangzhou 310027, Peoples R China
关键词
Electromagnetic metamaterials; finite-element method (FEM); power engineering; time-domain analysis;
D O I
10.1109/TMAG.2021.3066493
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
Magnetic metamaterials exhibit extraordinary electromagnetic properties and have shown great potential in low-frequency near-field electromagnetic applications. A near-field device or system is consisted of different natural media and low-frequency metamaterials, and it is essential to develop a numerical methodology to compute the transient response of such a device or system. However, most existing works are dedicated to high-frequency metamaterials and wave propagation problems, whereas the study of numerical methodology for low-frequency metamaterials in magnetoquasistatic (MQS) fields is still blank and challenging. In this regard, a time-domain finite-element method (TDFEM) is first derived for MQS field applications of low-frequency metamaterials. The metamaterials are modeled as continuous media and approximated by a nonstandard Lorentz dispersion equation. The formulas to handle dispersive media in near field are derived based on the auxiliary equation method. The proposed method is validated in a 2-D axisymmetric case study by comparing its results with those of frequency-domain computations.
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页数:5
相关论文
共 10 条
[1]   Analysis of the resolution of split-ring metamaterial lenses with application in parallel magnetic resonance imaging [J].
Algarin, Jose M. ;
Freire, Manuel J. ;
Lopez, Marcos A. ;
Lapine, Mikhail ;
Jakob, Peter M. ;
Behr, Volker C. ;
Marques, Ricardo .
APPLIED PHYSICS LETTERS, 2011, 98 (01)
[2]  
[Anonymous], 1959, J. Eng. Mechan. Division, DOI [DOI 10.1061/JMCEA3.0000098, 10.1061/JMCEA3.0000098]
[3]   Electromagnetic energy in a dispersive metamaterial [J].
Boardman, AD ;
Marinov, K .
PHYSICAL REVIEW B, 2006, 73 (16)
[4]  
Gong Z., 2020, INT REV FINANC, V70, P1
[5]   One-dimensional stacking miniaturized low-frequency metamaterial bulk for near-field applications [J].
Gong, Zhi ;
Yang, Shiyou .
JOURNAL OF APPLIED PHYSICS, 2020, 127 (11)
[6]  
Li J., 2013, TIME DOMAIN FINITE E, P14
[7]   Finite element study of the Lorentz model in metamaterials [J].
Li, Jichun .
COMPUTER METHODS IN APPLIED MECHANICS AND ENGINEERING, 2011, 200 (5-8) :626-637
[8]   Magnetic Metamaterial Superlens for Increased Range Wireless Power Transfer [J].
Lipworth, Guy ;
Ensworth, Joshua ;
Seetharam, Kushal ;
Huang, Da ;
Lee, Jae Seung ;
Schmalenberg, Paul ;
Nomura, Tsuyoshi ;
Reynolds, Matthew S. ;
Smith, David R. ;
Urzhumov, Yaroslav .
SCIENTIFIC REPORTS, 2014, 4
[9]   Extraction of Material Parameters for Metamaterials Using a Full-Wave Simulator [J].
Numan, Ahmad B. ;
Sharawi, Mohammad S. .
IEEE ANTENNAS AND PROPAGATION MAGAZINE, 2013, 55 (05) :202-211
[10]   Magnetism from conductors and enhanced nonlinear phenomena [J].
Pendry, JB ;
Holden, AJ ;
Robbins, DJ ;
Stewart, WJ .
IEEE TRANSACTIONS ON MICROWAVE THEORY AND TECHNIQUES, 1999, 47 (11) :2075-2084