装载特殊分散材料的宽带介质谐振器天线研究

IF 3.5 Q2 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE Open Journal of Antennas and Propagation Pub Date : 2024-08-01 DOI:10.1109/OJAP.2024.3436557
Xiantao Yang;Elliot Leon Bennett;Ilkan Calisir;Qiang Hua;Jianliang Xiao;Yi Huang
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引用次数: 0

摘要

本文详细介绍了对装载特殊色散材料的宽带介质谐振器天线(DRA)的综合研究。本文首次使用相对介电率与 n 的频率幂成反比的新材料(即 $\varepsilon _{r }$ (f) ${=} ),提出了一类新型宽带紧凑型 DRA 的概念和理论。{k}$ / $f^{n}$ ,k 为常数)。传统的 DRA 通常带宽有限,辐射模式不稳定。所提出的新型 DRA 在带宽增强、尺寸减小、单模纯度(主要支持单模,其他不需要的模式干扰极小)和辐射模式稳定等方面表现出卓越的优势。新的介质谐振器理论具有宽带谐振特性。在此基础上,设计并研究了宽带、紧凑型圆柱形和矩形 DRA。模拟和测量结果表明了所提天线的优点。结果表明,在不改变结构的情况下,与使用具有恒定介电常数(4%)的传统材料制成的 DRA 相比,由色散材料制成的拟议圆柱形 DRA 的带宽百分比可显著提高到 120%。本文为制造具有稳定辐射模式的宽带紧凑型 DRA 提供了一种新方法,可用于未来的宽带无线通信和雷达应用。
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A Study of Wideband Dielectric Resonator Antennas Loaded With Special Dispersive Materials
In this paper, a comprehensive study of wideband dielectric resonator antennas (DRAs) loaded with special dispersive materials is given in detail. The concept and theory for a new class of wideband and compact DRAs are introduced for the first time using the new material whose relative permittivity is inversely proportional to the frequency power of n (i.e., $\varepsilon _{r }$ (f) ${=} {k}$ / $f^{n}$ , k is a constant). Traditional DRAs are normally of limited bandwidth and unstable radiation patterns. The proposed new DRAs exhibit excellent advantages in bandwidth enhancement, size reduction, single-mode purity (predominantly supporting a single mode with minimal interference from other unwanted modes), and stable radiation patterns. The new dielectric resonator theory with wideband resonance characteristics is developed. Based on this, wideband and compact cylindrical and rectangular DRAs are designed and studied. The simulated and measured results demonstrate the merits of the proposed antennas. It is shown that without changing the structures, the percentage bandwidth of the proposed cylindrical DRA made of a dispersive material can be significantly increased to 120%, compared to the DRA using the traditional material with a constant permittivity (4%). The paper provides a new approach for making wideband and compact DRAs with stable radiation patterns for future wideband wireless communications and radar applications.
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来源期刊
CiteScore
6.50
自引率
12.50%
发文量
90
审稿时长
8 weeks
期刊最新文献
Front Cover Table of Contents IEEE Open Journal of Antennas and Propagation List of Reviewers, Volume 5 IEEE Open Journal of Antennas and Propagation Instructions for authors IEEE ANTENNAS AND PROPAGATION SOCIETY
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