博碩士論文 965201110 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:18 、訪客IP:18.188.86.125
姓名 陳捷寧(Chieh-ling Chen)  查詢紙本館藏   畢業系所 電機工程學系
論文名稱 高選擇度之微型化平衡-非平衡濾波器設計
(Compact Balanced-to-Unbalanced Filter Design with High Selectivity)
相關論文
★ 利用缺陷型接地結構之雙頻微型平面倒F天線設計★ 應用於第三代行動電話之倒F天線設計
★ 使用寄生元件之平面式倒F型雙頻天線設計★ 利用寄生元件之平面式倒 F 型三頻天線設計
★ 無線通訊之三頻天線設計★ 無線通訊之雙頻與三頻槽孔型天線設計
★ 應用於智慧型行動裝置之LTE/WWAN多頻單極天線設計★ 應用於行動手持裝置之LTE/WWAN天線設計
★ 利用背腔式槽孔線結構之多頻段天線設計★ 利用缺陷地面共振電路之介質量測技術
★ 應用於藍芽與全球衛星定位系統之電抗性負載型雙頻槽孔天線★ 帶通圓形極化頻率選擇面之設計
★ 啞鈴型缺陷地面之介質量測電路分析與設計★ 雙頻圓極化微波極化器設計
★ 利用微小共振電路之多頻段天線設計★ 應用於X-band平面吸波器之薄型負載電路設計
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]   [檢視]  [下載]
  1. 本電子論文使用權限為同意立即開放。
  2. 已達開放權限電子全文僅授權使用者為學術研究之目的,進行個人非營利性質之檢索、閱讀、列印。
  3. 請遵守中華民國著作權法之相關規定,切勿任意重製、散佈、改作、轉貼、播送,以免觸法。

摘要(中) 本論文中將提出具有高選擇度之平衡-非平衡濾波器設計,電路架構為結合平衡-非平衡轉換器與帶通濾波器的創新設計,藉由可控制的傳輸零點對選擇度與頻寬做調整,本次設計將以數位廣播之L頻段(1452 MHz~1492 MHz)作為設計實例;平衡-非平衡轉換器設計上利用適當的集總元件使得耦合線的電子長度小於或等於λ/4,且串聯於耦合線之間的電容可有效控制諧波處零點的位置;接著考量與濾波器電路架構結合時特性上的變化,將對非對稱饋入之平衡-非平衡轉換器提出探討;另外為了增加外頻的選擇度,本論文使用髮梳式帶通濾波器的架構整合於上述的平衡-非平衡轉換器結構中,並且經由電路分析後,設計者可以自由選擇零點位置而達成高選擇度的設計需求,在此架構下所使用之平衡-非平衡轉換器與帶通濾波器會共用部分的耦合線段,因此當濾波器階數增加時亦不會大幅增加電路的使用面積,故此架構乃是一個具高選擇度、微型化與具彈性化之設計。電路的製作以ARLON 25N 0.46 mm的板材完成,介電常數為3.38、介質損耗為0.0025,並且由量測的結果在平衡端大小的不平衡性小於1 dB而相位不平衡性則在6°以內,而此結果與模擬比較後具有良好的一致性。
摘要(英) In the thesis, the design of the Balanced-to-unbalanced filters with high selectivity is presented. The proposed circuit configuration is built by combining a balun and bandpass filters in which the selectivity and bandwidth can be adjusted by controlling the position of transmission zeros. The proposed filters are designed in L-band (1452 MHz~1492 MHz). By adding lumped elements in the balun circuit, the electric length of coupled lines can be shorter than λ/4. Moreover, a transmission zero which is controlled by a series capacitor between the coupled lines of the balun can be applied to restrain the undesired second harmonic.
  In order to improve the selectivity, the filters will be integrated into the above-mentioned balun. Using circuit analysis, the designer can set transmission zeros at anywhere to get great selectivity. The balun and the bandpass filters will be merged together by using common coupled lines, so the miniaturization could be achieved. The effect of combining the balun and bandpass filters, and the characteristic of asymmetrical balun will be discussed.
The proposed balanced-to-unbalanced filter has advantages regarding selectivity, circuit compactness, and design flexibility. All circuits are fabricated on substrate, ARLON 25N. The relative permittivity, loss tangent, and thickness of the substrate are 3.38, 0.0025, and 0.46 mm, respectively. The proposed balanced-to-unbalanced filters achieved 0.5 dB amplitude imbalance and 6° phase imbalance. The measured results are in good agreement with the simulation.
關鍵字(中) ★ 平衡-非平衡濾波器 關鍵字(英) ★ Balanced-to-Unbalanced Filter
論文目次 中文摘要 ...............................................................................................................................i
英文摘要 .............................................................................................................................. ii
誌 謝 ............................................................................................................................. iii
目 錄 .............................................................................................................................. iv
圖 目 錄 ............................................................................................................................... v
表 目 錄 ........................................................................................................................... viii
第一章 緒論 ........................................................................................................................ 1
第二章 非對稱型式平衡-非平衡轉換器 ............................................................................ 5
2-1 簡介 ........................................................................................................................ 5
2-2 平衡-非平衡轉換器電路分析與設計 ..................................................................... 6
2-3 非對稱型式平衡-非平衡轉換器設計 ................................................................... 20
2-4 電路設計與佈局 ................................................................................................... 24
2-5 結論 ...................................................................................................................... 31
第三章 平衡-非平衡濾波器 ............................................................................................... 32
3-1 簡介 ....................................................................................................................... 32
3-2 髮梳式帶通濾波器設計理論 ................................................................................ 33
3-3 平衡-非平衡濾波器設計 ...................................................................................... 45
3-4 高階平衡-非平衡濾波器設計............................................................................... 55
3-5 結論 ...................................................................................................................... 63
第四章 總結 ...................................................................................................................... 64
參考文獻 ............................................................................................................................. 65
參考文獻 [1] B. P. Kumar, G. R. Branner, and B. Huang, “Parametric analysis of improved planar balun circuits for wireless microwave and RF applications,” in Proceedings: 42nd Midwest Symp. Circuits Syst., 1999, pp.474-475.
[2] D. Raicu, “Design of planar, single-layer microwave baluns,” in IEEE MTT-S Int. Microw. Symp. Dig., 1998, pp. 801–804.
[3] Zhen-Yu Zhang, Yong-Xin Guo, L.C. Ong, and M.Y.W. Chia, “A new planar marchand balun,” in IEEE MTT-S Int. Microw. Symp. Dig., 2005, pp. 1207–1210.
[4] Anthony M. Pavio and Anthony Kikel, “A momolithic or hybrid broadband compensated balun,” in IEEE MTT-S Int. Microw. Symp. Dig., 1990, pp. 483–486.
[5] K. Nishikawa, I. Toyoda, and T. Tokumitsu, “Compact and broad-band three-dimensional MMIC balun,” IEEE Trans. Microw. Theory Tech., vol. 47, pp. 96–98, Jan. 1999.
[6] Y. J. Yoon, Y. Lu, R. C. Frye, M. Y. Lau, P. R. Smith, L. Ahlquist, and D. P. Kossives, “Design and characterization of multilayer spiral transmission line baluns,” IEEE Trans. Microw. Theory Tech., vol. 47, pp.
[7] A. M. Pavio and R. M. Halladay, “A distributed double-balanced dualgate FET mixer,” in IEEE GaAs IC Symp. Dig., 1988, p. 177.
[8] S. J. Parisi, “180° lumped-element hybrid,” in IEEE MTT-S Int Microw. Symp. Dig., 1989, pp. 1243–1246.
[9] K. S. Ang, Y. C. Leong, and C. H. Lee, “Analysis and design of miniaturized lumped-distributed impedance-transforming balun,” IEEE Trans. Microw. Theory Tech., vol. 51, no. 3, pp. 1009–1017, Mar. 2003.
[10] S. P. Ojha, G. R. Branner, and B. P. Kumar, “A miniaturized lumped-distributed balun for modern wireless communication,” in Proceedings: 39nd Midwest Symp. Circuits Syst., 1996, pp.1347-1350.
[11] B. P. Kumar, Senior Member, IEEE, and G. R. Branner, Life Member, IEEE, “Optimized design of unique miniaturized planar baluns for wireless applications,” IEEE Microw. Wireless Compon. Lett., vol. 13, no. 2, pp. 134-136, Feb. 2003.
[12] C. W. Tang and C. Y. Chang, “A semi-lumped balun fabricated by low temperature co-fired ceramic,” in IEEE MTT-S Int. Microw. Symp. Dig., Jun. 2002, pp. 2201–2204.
[13] C. Y. Ng, M. Chongcheawchamnan, and I.D. Robertson, “Analysis and design of a high-performance planar Marchand balun,” in IEEE MTT-S Int. Microw. Symp. Dig., Jun. 2002, pp. 113–116.
[14] Sheng-Che Tseng, Chinchun Meng, Chia-Hung Chang, and Guo-Wei Huang, “SiGe HBT Gilbert Downconverter With an Integrated Miniaturized Marchand Balun for UWB Applications,” in IEEE MTT-S Int. Microw. Symp. Dig., Jun. 2007, pp. 2141–2144.
[15] K. S. Ang, Y. C. Leong, and C. H. Lee, “Analysis and design of miniaturized lumped-distributed impedance transforming baluns,” IEEE Trans. Microw. Theory Tech., vol. 51, no. 3, pp. 1009–1017, Mar. 2003.
[16] Choonsik Cho, Student Member, IEEE, and K. C. Gupta, Fellow, IEEE, “A new design procedure for single-layer and two-layer three-line baluns,” IEEE Trans. Microw. Theory Tech., vol. 46, no. 12, pp. 2514–2518, Dec. 1998.
[17] Jwo-Shiun Sun and Tsung-Lin Lee, “Design of a planar balun,” in Proc. Asia-Pacific Microw. Conf., Dec. 2001, pp. 535-538.
[18] Kian Sen Ang, Member, IEEE, Yoke Choy Leong, and Chee How Lee, “Multisection impedance-transforming coupled-line balun,” IEEE Trans. Microw. Theory Tech., vol. 51, no. 2, pp. 536–541, Feb. 2003.
[19] Tsung-Nan Kuo, Shih-Cheng Lin, Chi-Hsueh Wang, and Chun Hsiung Chen, Fellow, IEEE, “Compact bandpass filters based on dual-plane microstrip/coplanar-waveguide structure with quarter-wavelength resonators ,” IEEE Microw. Wireless Compon. Lett., vol. 17, no. 3, pp. 178-180, Mar. 2007.
[20] Lap Kun Yeung, Student Member, IEEE, and Ke-Li Wu, Senior Member, IEEE, “A compact second-order LTCC bandpass filter with two finite transmission Zeros,” IEEE Trans. Microw. Theory Tech., vol. 51, no. 2, pp. 337–341, Feb. 2003.
[21] Chao-Huang Wu, Yo-Shen Lin, Chi-Hsueh Wang, and Chun Hsiung Chen, “Compact Microstrip Parallel-Coupled Bandpass Filters With Multiple Transmission Zeros,” in Proc. 36th Eur. Microw. Conf., Sept. 2006, pp. 1151–1154.
[22] Ching-Wen Tang, Yin-Ching Lin, and Chi-Yang Chang, Member, IEEE, “Realization of transmission zeros in combline filters using an auxiliary inductively coupled ground plane,” IEEE Trans. Microw. Theory Tech., vol. 51, no. 10, pp. 2112–2118, Feb. 2003.
[23] Lap K. Yeung and Ke-Li Wu, “An integrated RF balanced-filter with enhanced rejection characteristics,” in IEEE MTT-S Int. Microw. Symp. Dig., Jun. 2005, pp. 713–716.
[24] Wu and L.K.K.-L, “An LTCC balanced-to-unbalanced extracted-pole bandpass filter with complex load,” IEEE Trans. Microw. Theory Tech., vol. 54, no. 4, pp. 1512 - 1518, Apr. 2006
[25] M. C. Park, B. H. Lee, and D. S. Park, “A laminated balance filter using LTCC technology,” in Proc. Asia–Pacific Microwave. Conf., Dec. 2005, pp. 2974–2977.
[26] D. W. Yoo, E. S. Kim, and S. W. Kim, “A balance filter with DC supply for Bluetooth module,” in Proc. 35th Eur. Microwave. Conf., Oct. 2005, pp. 1405–1414.
[27] R. Kravchenko, K. Markov, D. Orlenko, G. Sevskiy, and P. Heide, “Implementation of a miniaturized lumped-distributed balun in balanced filtering for wireless applications,” in Proc. 35th Eur. Microw. Conf., Oct. 2005, pp. 1303–1306.
[28] S. Sakhnenko, D. Orlenko, K. Markov, A. Yatsenko, B. Vorotnikov, G. Sevskiy, P. Heide, M. Vossiek, “Low profile LTCC balanced filter based on a lumped elements balun for WiMAX applications,” in IEEE MTT-S Int. Microw. Symp. Dig., Jun. 2008, pp. 1111–1114.
[29] Chin-Lung Tsai and Yo-Shen Lin, “Analysis and design of new single-to-balanced multicoupled line bandpass filters using low-temperature co-fired ceramic technology,” IEEE Trans. Microw. Theory Tech., vol. 56, no. 12, pp. 2902–2912, Dec. 2008
[30] Kun-Tzu Chen and Shyh-Jong Chung, Senior Member, IEEE, “A novel compact balanced-to-unbalanced low-temperature co-fired ceramic bandpass filter with three coupled lines configuration,” IEEE Trans. Microw. Theory Tech., vol. 56, no. 7, pp. 1741 –1720, July 2008.
[31] Y. C. Leong, K. S. Ang, and C. H. Lee, “A derivation of a class of 3-port baluns from symmetrical 4-port networks,” in IEEE MTT-S Int. Microw. Symp. Dig., Jun. 2002, pp. 1165–1168.
[32] Ching-Wen Tang, Member, IEEE, and Sheng-Fu You, “Design methodologies of LTCC bandpass filters, diplexer, and triplexer with transmission zeros,” IEEE Trans. Microw. Theory Tech., vol. 54, no. 2, pp. 717 –723, Feb. 2008.
[33] T. P. German, L. R. Gustavo, and J. I. Alonso, “A simple method to design wide-band electronically tunable combline filters,” IEEE Trans.Microwave Theory Tech., vol. 50, no. 1, pp. 172-177, Jan. 2002
[34] Yu-Liang Chen, and Hung-Hsuan Lin, “Novel broadband planar balun using multiple coupled lines,” in IEEE MTT-S Int. Microw. Symp. Dig., Jun. 2006, pp. 1571–1574.
[35] R. J. Wenzel, “Synthesis of combline and capacitively loaded interdigital bandpass filters of arbitrary bandwidth,” IEEE Trans. Microwave Theory Tech., vol. MTT-19, no. 8, pp. 678486, Aug. 1971.
[36] J.-S. Hong and M. J. Lancaster, Microstrip Filters for RF/Microwave Application. New York: Wiley, 2001.
指導教授 丘增杰(Tsen-chieh Chiu) 審核日期 2009-7-20
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