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研究生: 蔡明利
Ming-Li Tsai
論文名稱: 無線通訊單極天線與晶片天線之研究
Study of Monopole Antenna and Chip Antenna for Wireless Communication
指導教授: 張勝良
Sheng-Lyang Jang
口試委員: 鄧恆發
Heng-Fa Teng
黃進芳
Jhin-Fang Huang
徐敬文
Ching-Wen Hsue
莊昀學
Yun-Hsueh Chuang
學位類別: 碩士
Master
系所名稱: 電資學院 - 電子工程系
Department of Electronic and Computer Engineering
論文出版年: 2008
畢業學年度: 96
語文別: 英文
論文頁數: 92
中文關鍵詞: 晶片天線單極天線
外文關鍵詞: Monopole Antenna, Chip Antenna
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在本論文中,我們將設計平板天線與半導體晶片天線,以便應用在無線通訊的機構中。平板天線實作方法是使用印刷在基板上的技術,使得天線具有輕薄短小的優點,具容易與電路基板相結合,提昇製作的便利與降低成本的特性。本文我們採用全波模擬軟體IE3D來模擬,再以RF-4板來實現天線,最後使用網路分析儀及微波暗室對天線特性作S參數和場型的量測。在本文第四章將探討半導體晶片天線的設計,並把天線應用在傳統型壓控震盪器中,使用具有電感值之晶片天線取代壓控震盪器之電感,使天線具有電感的特性可應用在震盪器上。


In this thesis, we will design planar antenna and semiconductor chip antenna, of the wireless communication. We discuss planar antenna implemented by directly printing conducting metal on the substrate (FR4) to have the advantages of compact size, manufacturing convenience, reduction of cost, and easy combination to other circuits. We adopt the whole simulation software IE3D simulate the properties of antenna, and realize antenna with RF-4 board again in this text, use network analysis and chamber to examine the S-parameter and patterns of antenna. We probe into the design of the semiconductor chip antenna in chapter four, and apply chip antenna with inductance value to a replace the inductor in traditional voltage-controlled oscillator.

中文摘要 I Abstract II 誌謝 IV List of Figures VII List of Tables X List of Tables X Chapter 1 Introduction 1 1.1 Motivation 1 Chapter 2 Microstrip Antenna Theory 3 2.1 Definition of a Microstrip Antenna 3 2.2 Microstrip Antenna Theory 4 2.3 The Cavity Model 10 2.4 Antenna Parameter 14 2.4.1 The Radiation Pattern 14 2.4.2 Radiation Resistance, Q Factor and Losses 15 2.4.3 Microstrip Antenna Bandwidth 18 2.4.4 Directivity and Gain 20 2.5 Monopole Antenna Theory 22 2.5.1 Dipole Antenna 22 2.5.2 Image Theory 23 2.5.3 Evolution of Monopole Antenna 26 2.5.4 Microstrip Antenna Feed Method 28 Chapter 3 Antenna Design 30 3.1 Dual-band monopole antenna with shorted parasitic element 30 3.1.1 Introduction 30 3.1.2 Antenna design and Experimental results 31 3.1.3 Experimental Results and Discussion 34 3.1.4 Conclusion 39 3.2 Several Wideband Printed Monopole Antenna 39 3.2.1 Introduction 40 3.2.2 Antenna desing and Simulation 42 3.2.3 Results and Discussion 49 3.2.4 Conclusion 50 Chapter 4 Chip Antenna 51 4.1 Introduction 51 4.2 Antenna types 51 4.3 Electromagnetic Waves Propagation 52 4.4 Antenna Efficiency 54 4.5 Experimental Results 55 4.6 Chip Antenna/Inductor 56 6.7 Chip Antenna Applied Complementary Voltage Controlled Oscillator 69 6.8 Measurement Results 72 Chapter 5 Conclusion 75 References 77

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