物理学报
物理學報
물이학보
2013年
10期
139-146
,共8页
徐新河?%肖绍球%甘月红%王秉中
徐新河?%肖紹毬%甘月紅%王秉中
서신하?%초소구%감월홍%왕병중
周期性结构%磁谐振%布洛赫本构参数%面磁流
週期性結構%磁諧振%佈洛赫本構參數%麵磁流
주기성결구%자해진%포락혁본구삼수%면자류
periodic structure%magnetic resonance%Bloch constitutive parameters%surface magnetic current
将薄的磁谐振介质板等效为面磁流,利用周期性边界条件,给出了面磁流的指数形式.通过计算无穷个面磁流在不同空间位置上产生的总电场和总磁场,推导出了周期性磁谐振人工材料的色散关系和布洛赫阻抗,进而获取了布洛赫本构参数的理论计算公式.由于考虑了磁谐振人工材料中的电反谐振对布洛赫介电常数和磁导率的影响,所以基于仿真实验的布洛赫本构参数的提取值和布洛赫本构参数理论预测值之间的误差很小,这说明本文推导的布洛赫本构参数的理论计算公式在描述周期性磁谐振材料的电磁特性方面是十分有效的.这些理论公式将在解释磁谐振现象、设计和优化周期性磁谐振材料等方面提供重要的理论依据.
將薄的磁諧振介質闆等效為麵磁流,利用週期性邊界條件,給齣瞭麵磁流的指數形式.通過計算無窮箇麵磁流在不同空間位置上產生的總電場和總磁場,推導齣瞭週期性磁諧振人工材料的色散關繫和佈洛赫阻抗,進而穫取瞭佈洛赫本構參數的理論計算公式.由于攷慮瞭磁諧振人工材料中的電反諧振對佈洛赫介電常數和磁導率的影響,所以基于倣真實驗的佈洛赫本構參數的提取值和佈洛赫本構參數理論預測值之間的誤差很小,這說明本文推導的佈洛赫本構參數的理論計算公式在描述週期性磁諧振材料的電磁特性方麵是十分有效的.這些理論公式將在解釋磁諧振現象、設計和優化週期性磁諧振材料等方麵提供重要的理論依據.
장박적자해진개질판등효위면자류,이용주기성변계조건,급출료면자류적지수형식.통과계산무궁개면자류재불동공간위치상산생적총전장화총자장,추도출료주기성자해진인공재료적색산관계화포락혁조항,진이획취료포락혁본구삼수적이론계산공식.유우고필료자해진인공재료중적전반해진대포락혁개전상수화자도솔적영향,소이기우방진실험적포락혁본구삼수적제취치화포락혁본구삼수이론예측치지간적오차흔소,저설명본문추도적포락혁본구삼수적이론계산공식재묘술주기성자해진재료적전자특성방면시십분유효적.저사이론공식장재해석자해진현상、설계화우화주기성자해진재료등방면제공중요적이론의거.
@@@@The thin magnetic resonance dielectric plate is equivalent to a surface magnetic current. Using periodic boundary conditions, the exponential form of the surface magnetic current density is given. The dispersion relation and Bloch impedance of a periodic magnetic resonator metamaterial are derived by calculating the total electric and magnetic fields at the different positions excited by the infinite number of surface magnetic currents, and thus the theoretical formulas for Bloch constitutive parameters are obtained. Since the electric anti-resonance influence on the Bloch permittivity and permeability of magnetic resonator metamaterial is considered, thus the Bloch constitutive parameter difference between theoretical values and retrieval results based on simulations is very small, which shows that the Bloch constitutive parameter formula derived in the paper is very effective to describe the electromagnetic properties of the periodic magnetic resonant material. These theoretical formulas will provide important theoretical basis for the interpretation of the magnetic resonance phenomenon, the design and optimization of the periodic magnetic resonant material.