博碩士論文 93521003 詳細資訊




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姓名 陳冠宇(Kuan-Yu Chen)  查詢紙本館藏   畢業系所 電機工程學系
論文名稱 應用於微波存取全球互通之發射機研製
(The Design and Implementation of Transmitter for WiMAX Applications)
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摘要(中) 此篇論文描述了數個應用於微波存取全球互通系統之射頻電路設計,採用台積電0.35微米矽鍺雙載子互補金屬氧化半導體製程。以下依各章節不同的電路來分類,概述論文中各電路的實際量測結果。
第二章為射頻發射機子電路的設計,包括了升頻混波器與可變增益放大器。升頻混波器約有9 dB的轉換損耗、輸出1-dB增益壓縮點為-11 dBm、輸出三階截斷點在-3 dBm、射頻埠和中頻埠和本地振盪源埠之間的隔離度均大於29 dB。可變增益放大器增益可調範圍為9.55 dB,高增益模式量測結果增益8.75 dB,輸出1-dB壓縮點為0.8 dBm,輸入三階截取點為16.8 dBm。線性模式增益4.1 dB,輸出1-dB壓縮點為10 dBm,輸入三階截取點為20 dBm。低增益模式量測結果增益-0.8 dB,輸出1-dB壓縮點為1.2 dBm,輸入三階截取點為12 dBm。
第三章為功率放大器的設計,包括了兩個壓控振盪器,一個是差動式可適性功率放大器,另一個是三級可變增益功率放大器。第一個功率放大器具有7.1 dB的增益、大於15 dB的輸入回返損耗、大於13 dB的輸出回返損耗、20.3 dBm的輸出1-dB增益壓縮點、28.1 dBm的輸出三階截斷點,1-dB增益壓縮點的功率增進效率為23.6%。第二個功率放大器具有25.2 dB的增益、大於8.9 dB的輸入回返損耗、20.6 dBm的輸出1-dB增益壓縮點、26.5 dBm的輸出三階截斷點,1-dB增益壓縮點的功率增進效率為24.4%,增益可調範圍為11.4 dB。
摘要(英) This thesis describes several radio frequency circuit designs, which are adopted in WiMAX applications. They are implemented with TSMC 0.35?m SiGe BiCMOS process. The following sections will summarize the practical measured results which will be thoroughly presented in following chapters.
Chapter 2 introduces the designs of sub-circuits of radio-frequency transmitter, including up-conversion mixer, and variable-gain amplifier. These circuits are measured on FR4 print circuit boards. The up-conversion mixer achieves conversion loss of 9 dB, output P1dB of -11 dBm, output IP3 of -3 dBm, and superior to 29 dB isolation among all ports. The variable gain amplifier (VGA) has gain control range of 9.55 dB, and has gain of 8.75 dB, output power at the 1-dB compression point of -0.8 dBm, output third order intercept point of 16.8 dBm in high-gain mode, and gain of 4.1 dB, output power at the 1-dB compression point of 10 dBm, output third-order intercept point of 20 dBm in linear mode, gain of -0.8 dB, output power at 1-dB compression point of 1.2 dBm, output third-order intercept point of 12 dBm in low-gain mode.
Chapter 3 presents the designs of linear power amplifier, including a differential adaptive power amplifier, and a three-stage variable-gain power amplifier. These circuits are measured on FR4 print circuit boards. The former amplifier provides a 7.1 dB gain with input return loss better than 15 dB, output return loss is 13 dB and has output P1dB of 20.3 dBm, output IP3 of 28.1 dBm, the PAE@ P1dB of 23.6%. The latter amplifier provides a 25.2 dB gain with input return loss better than 8.9 dB, and has output P1dB of 20.6 dBm, output IP3 of 26.4, the PAE@ P1dB of 24.4%, and gain control range of 11.4 dB.
關鍵字(中) ★ 功率放大器
★ 射頻電路
★ 發射機
關鍵字(英) ★ RF circuit
★ Transmitter
★ power amplifier
論文目次 第一章 導論.............................................................................................................1
1.1 研究動機….............................................................................................................1
1.2 論文架構.................................................................................................................1
第二章 WiMAX射頻發射機...................................................................................3
2.1 射頻發射機.............................................................................................................3
2.1.1 WiMAX 簡介....................................................................................................3
2.1.2 WiMAX 射頻發射機........................................................................................5
2.2 升頻混波器.............................................................................................................9
2.2.1 升頻混波器簡介..............................................................................................9
2.2.2 重要規格參數................................................................................................10
2.2.3 升頻混波器之實作........................................................................................12
2.3 可變增益放大器...................................................................................................19
2.3.1 可變增益放大器簡介.....................................................................................19
2.3.2 可變增益放大器之實作.................................................................................21
第三章 WiMAX功率放大器.................................................................................32
3.1 功率放大器...........................................................................................................32
3.1.1 功率放大器簡介.............................................................................................32
3.1.2 線性功率放大器............................................................................................37
3.2 差動式可適性功率放大器...................................................................................40
3.2.1 可適性偏壓操作原理....................................................................................40
3.2.2 差動式可適性功率放大器之實現................................................................49
3.3 可變增益功率放大器...........................................................................................60
3.3.1 多級可變增益放大器之規劃........................................................................60
3.3.2 可變增益功率放大器之實現.........................................................................61
第四章 結論...........................................................................................................75
參考文獻......................................................................................................................77
參考文獻 [1]B. Bisla, R. Eline, and L.M. Franca-Neto, “RF System and Circuit Challenges for WiMAX,” Intel Technology Journal, vol. 8, No. 3, pp. 189-199, Aug. 2004.
[2]A. Ghosh, D.R. Wolter, J.G. Andrews, and R. Chen, “Broadband Wireless Access with WiMax/802.16: Current Performance Benchmarks and Future Potential,” IEEE Communications Magazine, vol. 43, No. 2, pp. 129-136, Feb. 2005.
[3]S.M. Cherry, “WiMax and Wi-Fi Separate and Unequal,” IEEE Spectrum, vol. 41, No. 3, pp. 16-16, Mar. 2004.
[4]“Part 16: Air Interface for Fixed Broadband Wireless Access Systems,” IEEE Standard for Local and metropolitan area networks, IEEE Std™ 802.16-2004, 2004.
[5][Online].Available:http://www.taisaw.com/data/TB0270A%20_Rev.1.0_.pdf
[6]“Mixer spur calculator.” [Online].Available:http://www.hittite.com/index.cfm
[7] J.A. Acedo, and M.A. Copeland, “A 1.9-GHz silicon receiver with monolithic image filtering,” IEEE Journal of Solid-State Circuits, Vol. 33, No. 3, pp: 378 – 386, March. 1998.
[8]B.Gilbert, “A precise four-quadrant multiplier with subnanosecond response,” IEEE JSSCC,vol.SC-3, no.4,pp.365-373, Dec 1968.
[9] L.A. NacEachern, T. Manku, “A Charge-Injection Method for Gilbert Cell Biasing” Electrical and Computer Engineering, IEEE Canadian Conference, vol. 1, pp:365 - 368 ,May 1998.
[10]D.Y. Kim, S.G. Lee, J.H. Lee, “up-conversion mixer for PCS application using SI BJT,” Microwave and Millimeter Wave Technology 2nd International Conference on. ICMMT 2000 pp:424 - 427 Sept. 2000.
[11]E. Tilliharju, K. Halonen, “A Biased low-voltage BICMOS mixer for direct up-conversion,” Circuits and Systems, 2003. ISCAS '03. Proceedings of the 2003 International Symposium on vol. 1, 25-28 ,pp :I-33 - I-36 vol.1 May 2003.
[12] N. Byrne, P.J. Murphy, K.G. McCarthy, B. Foley, “A SiGe HBT variable gain amplifier with 80 dB control range for applications up to 3 GHz”, Wireless Technology, 2004. 7th European Conference on 11-12 pp:193-196 Oct. 2004.
[13] C.W. Kim, and Y.G. Kim; “A 2.7-V SiGe HBT variable gain amplifier for CDMA applications,” Microwave and Wireless Components Letters, IEEE Vol. 13, Issue 12, pp:502 – 504, Dec. 2003.
[14] J.H. Tsai; T.W. Huang;” A novel SiGe BiCMOS variable-gain active predistorter using current steering topologies”, Radio Frequency Integrated Circuits Symposium, 2004. Digest of Papers. 2004 IEEE,6-8 pp:559 – 562 June 2004.
[15] S. C. Cripps, “RF Power Amplifier for Wireless Communication”, ARTECH HOUSE, INC. ,1999.
[16] P. Asbeck, “Linearization of RF Power Amplifiers”, Nokia Mobile Phones and Department of Information Technology Technical University of Denmark, PhD thesis,2001.
[17]D.C.Cox, “Linear Amplification with Nonlinear Components”, IEEE Transaction on Communication, pp. 1942-1945, Dec., 1974.
[18] A.Bateman, “Combined Analogue Locked Loop Universal Modulator”, Proc. Of the 24tnd IEEE Vehicular Technology Conference, pp. 759-763 May, 1992.
[19] S. C. Cripps, “Advanced Techniques in RF Power Amplifier Design”, ARTECH HOUSE, INC. ,2002.
[20] D.C.Cox, “Linear Amplification by sampling techniques : a new application for delta coders”, IEEE Transaction on Communication, vol.23, No.8, pp. 793-798, 1975.
[21] V. Petrovic, W. Gosling, “Polar-Loop Transmitter”, Electronics Letters, Vol. 15, Np.10,May, 1979.
[22] E. Eid, F. M. Ghannouchi, “Adaptive Nulling Loop Control for 1.7GHz
Feed-forward Linearization Systems”, IEEE Transaction on Microwave Theory and Technique, Vol.45, No.1 , pp. 83-86, January, 1997.
[23] K. Yamauchi ,K. Mori, M. Nakayama, Y. Mitsui, and T.i Takagi, “A Microwave Miniaturized Linearizer Using A Parallel Diode,” IEEE MIT-S Digest, pp.1199-1202, 1997.
[24] Y. S. Noh, and C. S. Park, “PCS/W-WCDMA Dual-Band MMIC Power Amplifier With a Newly Proposed Linearizing Bias Circuit,” IEEE Journal of Solid-State Circuits, vol.37, No.9, 2002.
[25]J.H. Kim, Y.S. Noh and C.S. Park “MMIC Power Amplifier Adaptively Linearized With RF Coupled Active Bias Circuit For W-CDMA Mobile Terminals Applications” Microwave Symposium Digest, 2003 IEEE MTT-S International,Volume 3, 8-13, pp :2209 - 2212 vol.3 June 2003.
[26] D.E. Bockelman and W.R. Eisenstadt, “Combined differential and common mode scattering parameter: Theory and simulation,” IEEE Tran. On Microwave Theory and Techniques, Vol. 43, No. 7, pp. 1530-1539, July 1995.
[27] D.S. MAlhi, L. E. Larson, D. Wang, C. Demirdag, and V.Pereira, “SiGe W-CDMA Transmitter for Mobile Terminal Application” IEEE Journal of Solid-State Circuits, vol.38, No.9, 2003.
[28] Y. Yang, “Power Amplifier Low Average Current and Compact Output Matching Network” IEEE Microwave and Wireless Components Letters, VOL.15, NO.11 November 2005.
指導教授 邱煥凱(Hwann-Kaeo Chiou) 審核日期 2006-7-17
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