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Novel Microwave Passive Devices For Dual-Band Applications.

机译:适用于双频应用的新型微波无源设备。

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摘要

Microwave passive couplers are widely used in microwave and millimeter-wave applications and communication systems. Common examples are branch line coupler, rat race coupler, power divider, and crossover junction. They are used for the dividing, combining and re-directing of signal power.;Very often, a passive coupler utilizes simple quarter-wavelength transmission lines for implementation which will lead to narrow-band operation. Therefore, it is difficult to deploy such circuit for wide-band or multi-band applications. Multi-section topologies may be used to broaden the operating bandwidth, with which the major drawbacks are enlarged circuit size and the requirement of extreme high (or low) branch-line characteristic impedances. Both are not attractive for mass and low cost production. Conventional design approaches are, therefore, not suitable for modern communication systems with multi-band operation.;For size miniaturization and cost reduction, the design of dual band devices has become an emerging research area in recent years. A desirable dual-band solution should offer size compactness, high performance (e.g. low insertion loss) and compatible with conventional printed circuit broad (PCB) technology, especially microstrip lines.;In this research, several new devices, including rat-race coupler, power divider and crossover junction, capable of operating at dual frequency bands are proposed. These structures involve only simple branch-line sections and a minimal number of shunt stubs. All characteristic impedances are ranged from 20 O to 100 O. Most designs can operate with wide frequency spacing between the two bands. These designs offer low insertion loss as well as good return loss performances, and are small in size, in compared to the broadband approach. For design purposes, explicit closed-form equations are derived for the evaluation of circuit parameters. In addition, the usable range of these devices with respect to frequency band separation is examined. For verification, various prototypes are constructed by using microstrip technology and in-house fabrication facilities. Both simulated and measured results are presented and compared with state-of-the-art examples.
机译:微波无源耦合器广泛用于微波和毫米波应用和通信系统。常见示例是分支线耦合器,鼠形耦合器,功率分配器和交叉结。它们用于信号功率的划分,组合和重定向。无源耦合器经常使用简单的四分之一波长传输线来实现,这将导致窄带工作。因此,难以将这种电路部署到宽带或多频带应用中。多部分拓扑可用于加宽工作带宽,其主要缺点是电路尺寸增大以及要求极高(或极低)支线特性阻抗。两者对于大规模和低成本生产都没有吸引力。因此,传统的设计方法不适用于具有多频带操作的现代通信系统。为了缩小尺寸和降低成本,双频带设备的设计已成为近年来的新兴研究领域。理想的双频解决方案应提供尺寸紧凑,高性能(例如,低插入损耗)并与常规印刷电路板(PCB)技术(尤其是微带线)兼容。在这项研究中,包括鼠类耦合器在内的几种新型器件,提出了能够在双频带下工作的功率分配器和交叉结。这些结构仅涉及简单的分支线部分和最少数量的并联支线。所有特性阻抗的范围为20 O至100O。大多数设计可以在两个频段之间以较宽的频率间隔工作。与宽带方法相比,这些设计具有低插入损耗以及良好的回波损耗性能,并且尺寸小。出于设计目的,导出了显式的闭式方程式,用于评估电路参数。另外,检查了这些设备关于频带分离的可用范围。为了验证,使用微带技术和内部制造设施构造了各种原型。给出了模拟和测量结果,并与最新示例进行了比较。

著录项

  • 作者

    Wong, Fai Leung.;

  • 作者单位

    The Chinese University of Hong Kong (Hong Kong).;

  • 授予单位 The Chinese University of Hong Kong (Hong Kong).;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 126 p.
  • 总页数 126
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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