博碩士論文 106521093 詳細資訊




以作者查詢圖書館館藏 以作者查詢臺灣博碩士 以作者查詢全國書目 勘誤回報 、線上人數:66 、訪客IP:18.116.40.151
姓名 魏俊豪(JUN-HAO WEI)  查詢紙本館藏   畢業系所 電機工程學系
論文名稱 微小化雙頻匹配電路設計及應用
(Miniature Dual Band Matching Network)
相關論文
★ 用於行動上網裝置之智慧型陣列天線★ 吸收式帶止濾波器之研製
★ 一維及二維切換式波束掃描陣列天線★ 寬頻微型化六埠網路接收機
★ 具有良好選擇度的寬頻吸收式帶止濾波器★ 微小化吸收式帶止濾波器之通帶改善
★ 共面波導帶通濾波器之研製★ 微帶耦合線帶通濾波器與雙工器研製
★ 宇宙微波背景輻射陣列望遠鏡接收機 之校準信號源研製★ K-Band及Q-Band毫米波帶通濾波器設計
★ 薄膜製程射頻被動元件設計★ 微波帶通低雜訊放大器設計
★ 積體式微波帶通濾波器之研製★ 應用於高位元率無線傳輸系統之V頻段漸進式開槽天線陣列
★ 以多重耦合線實現多功能帶通濾波器★ 以單刀雙擲帶通濾波器實現高整合度射頻前端收發系統
檔案 [Endnote RIS 格式]    [Bibtex 格式]    [相關文章]   [文章引用]   [完整記錄]   [館藏目錄]   至系統瀏覽論文 (2025-1-6以後開放)
摘要(中) 本論文以微型暨積體化雙頻匹配電路為設計目標,提出較為簡單並能大幅縮小尺寸的電路設計方式。本研究以雙頻橋式T線圈取代傳輸驗,而能將單頻電路轉換成雙頻電路,並同時達成電路尺寸的微型化,進而據以實現微型化之雙頻單殘枝匹配電路。除此之外,也利用雙頻單殘枝匹配電路完成雙頻低雜訊放大器的設計。上述雙頻單殘枝匹配電路以積體被動元件(IPD)製程實現,為驗證其電路效能,以四種不同負載設計雙頻單殘枝匹配電路,其操作頻率皆為2.4 GHz與5.5 GHz。在2.4 GHz的頻率下之電氣尺寸小於0.012λ0×0.014λ0;而在5.5 GHz下的電氣尺寸小於0.03λ0×0.032λ0,電路面積皆遠小於既有文獻。而雙頻低雜訊放大器則以積體被動元件(IPD)整合互補金屬氧化物半導體CMOS 180nm製程實現,在兩個操作頻率2.4 GHz與5.5 GHz下皆有達到低雜訊、高增益,與良好的阻抗匹配,也驗證了雙頻單殘枝匹配電路的實用。
摘要(英) This study aims at the design of miniature integrated dual-band impedance matching networks. A simple design method is propose and the circuit size can be largely reduced compared with the conventional designs. Specifically, the dual-band bridged-T coils are used to replace transmission lines in the conventional single stub matching network such that size reduction and dual-band operation can be simultaneously achieved.In addition, the proposed dual-band single stub matching circuit is applied to the design a dual-band low noise amplifier as an application example. The proposed dual-band single stub matching circuits are realized using an integrated passive device (IPD) process. The operating frequencies are 2.4 GHz and 5.5 GHz. The electrical size of them are less than 0.012λ0×0.014λ0 at 2.4 GHz, while it is less than 0.03λ0×0.032λ0 at 5.5 GHz. The proposed dual-band matching circuits are much smaller in size than the existing designs in the literature. On the other hand, the proposed dual-band low noise amplifier is realized using a IPD/-CMOS 180nm process. Low noise, high gain, and good impedance matching at the two center frequencies of 2.4 GHz and 5.5 GHz are achieved. This verifies the effectiveness of proposed dual band single stub matching circuit for dual-band microwave circuit design.
關鍵字(中) ★ 雙頻
★ 匹配電路
★ 低雜訊放大器
關鍵字(英)
論文目次 論文摘要 I
Abstract II
致謝 III
目錄 IV
圖形列表 V
表格列表 XII
第一章 緒論 1
1-1研究動機 1
1-2文獻回顧 2
1-3章節介紹 3
第二章 雙頻橋式T線圈 4
2-1 電路架構 4
2-2 模型萃取 9
2-3 設計限制 23
2-4 設計範例 32
2-5 結果與討論 40
第三章 雙頻單殘枝匹配電路 41
3-1 單頻單殘枝匹配電路 41
3-2 雙頻單殘枝匹配電路 44
3-2-1 電路架構 44
3-2-2 電路實作及量測 50
3-3 結果與討論 100
第四章 雙頻低雜訊放大器 102
4-1 電路架構 102
4-2 電路實作及量測 111
4-3 結果與討論 131
第五章 結論 133
參考文獻 135
參考文獻 [1] F. Paredes, G. Zamora, J. Bonache and F. Martín, ”Perturbation method based on resonant type metamaterial transmission lines for dual-band matching networks,” 2009 Mediterrannean Microwave Symposium (MMS), Tangiers, 2009, pp. 1-4.
[2] F. Paredes, G. Gonzalez, J. Bonache and F. Martín, ”Dual-Band Impedance-Matching Networks Based on Split-Ring Resonators for Applications in RF Identification (RFID),” in IEEE Transactions on Microwave Theory and Techniques, vol. 58, no. 5, pp. 1159-1166, May 2010.
[3] M. L. Chuang, ”Analytical design of dual-band impedance transformer with additional transmission zero,” in IET Microwaves, Antennas & Propagation, vol. 8, no. 13, pp. 1120-1126, 21 October 2014.
[4] X. Wang, Z. Ma and M. Ohira, ”Dual-Band Design Theory for Dual Transmission-Line Transformer,” in IEEE Microwave and Wireless Components Letters, vol. 27, no. 9, pp. 782-784, Sept. 2017.
[5] J. Liu, X. Y. Zhang and C. L. Yang, ”Analysis and Design of Dual-Band Rectifier Using Novel Matching Network,” in IEEE Transactions on Circuits and Systems II: Express Briefs, vol. 65, no. 4, pp. 431-435, April 2018.
[6] M. L. Chuang, ”Dual-Band Impedance Transformer Using Two-Section Shunt Stubs,” in IEEE Transactions on Microwave Theory and Techniques, vol. 58, no. 5, pp. 1257-1263, May 2010.
[7] M. A. Maktoomi, M. S. Hashmi and F. M. Ghannouchi, ”Improving Load Range of Dual-Band Impedance Matching Networks Using Load-Healing Concept,” in IEEE Transactions on Circuits and Systems II: Express Briefs, vol. 64, no. 2, pp. 126-130, Feb. 2017.
[8] O. Manoochehri, A. Asoodeh and K. Forooraghi, ”Pi-Model Dual-Band Impedance Transformer for Unequal Complex Impedance Loads,” in IEEE Microwave and Wireless Components Letters, vol. 25, no. 4, pp. 238-240, April 2015.
[9] M. L. Chuang and M. T. Wu, ”Transmission Zero Embedded Dual-Band Impedance Transformer With Three Shunt Stubs,” in IEEE Microwave and Wireless Components Letters, vol. 27, no. 9, pp. 788-790, Sept. 2017.
[10] W. L. Chang, C. Meng, J. H. Ni, K. C. Chang, C. K. Chang, P. Y. Lee and Y. L. Huang, ”Analytical Noise Optimization of Single-/Dual-Band MOS LNAs With Substrate and Metal Loss Effects of Inductors,” in IEEE Transactions on Circuits and Systems I: Regular Papers, vol. 66, no. 7, pp. 2454-2467, July 2019.
[11] S. Sattar and T. Z. A. Zulkifli, ”A 2.4/5.2-GHz Concurrent Dual-Band CMOS Low Noise Amplifier,” in IEEE Access, vol. 5, pp. 21148-21156, 2017.
[12] Y. J. Hong, S. F. Wang, P. T. Chen, Y. S. Hwang and J. J. Chen, ”A concurrent dual-band 2.4/5.2 GHz low-noise amplifier using gain enhanced techniques,” 2015 Asia-Pacific Symposium on Electromagnetic Compatibility (APEMC), Taipei, 2015, pp. 231-234.
[13] B. Iyer, N. P. Pathak, ”A concurrent dual-band LNA for noninvasive vital sign detection system”, Microw. Opt. Technol. Lett., vol. 56, pp. 391-394, 2014.
[14] A. Kumar and N. P. Pathak, ”Coupled stepped-impedance resonator (CSIR) based concurrent dual band filtering LNA for wireless applications,” 2015 IEEE MTT-S International Microwave and RF Conference (IMaRC), Hyderabad, 2015, pp. 262-265.
[15] K. A. Hsieh, H. S. Wu, K. H. Tsai and C. K. Clive Tzuang, ”A Dual-Band 10/24-GHz Amplifier Design Incorporating Dual-Frequency Complex Load Matching,” in IEEE Transactions on Microwave Theory and Techniques, vol. 60, no. 6, pp. 1649-1657, June 2012.
[16] J. Lee and C. Nguyen, ”A K-/Ka- Band Concurrent Dual-Band Single-Ended Input to Differential Output Low-Noise Amplifier Employing a Novel Transformer Feedback Dual-Band Load,” in IEEE Transactions on Circuits and Systems I: Regular Papers, vol. 65, no. 9, pp. 2679-2690, Sept. 2018.
[17] Z. Ke, S. Mou, K. Ma and F. Meng, ”A 0.7/1.1-dB Ultra-Low Noise Dual-Band LNA Based on SISL Platform,” in IEEE Transactions on Microwave Theory and Techniques, vol. 66, no. 10, pp. 4576-4584, Oct. 2018.
[18] Y. S. Lin and J. H. Lee, ”Miniature Butler Matrix Design Using Glass-Based Thin-Film Integrated Passive Device Technology for 2.5-GHz Applications,” IEEE Transactions on Microwave Theory and Techniques, vol. 61, no. 7, pp. 2594-2602, July 2013.
[19] 李駿華, ”無頻寬減損之微小化功率分配器與巴特勒矩陣,” 碩士論文 國立中央大學, June 2011.
[20] 曾子豪, ”無頻寬減損之微小化集總元件被動電路,” 碩士論文 國立中央大學, June 2012.
[21] 方偉廷, ”基於橋式T線圈之微型化切換式波束成型模組,” 博士論文 國立中央大學, June 2017.
[22] D. M. Pozar, Microwave engineering. John Wiley & Sons, 2009.
指導教授 林祐生(Yo-Shen Lin) 審核日期 2020-1-8
推文 facebook   plurk   twitter   funp   google   live   udn   HD   myshare   reddit   netvibes   friend   youpush   delicious   baidu   
網路書籤 Google bookmarks   del.icio.us   hemidemi   myshare   

若有論文相關問題,請聯絡國立中央大學圖書館推廣服務組 TEL:(03)422-7151轉57407,或E-mail聯絡  - 隱私權政策聲明