簡易檢索 / 詳目顯示

研究生: 羅裕盛
Luo, Yu-Sheng
論文名稱: 新型邊界導通昇壓型功率因數修正器控制IC設計
A Novel Approach to Boundary Conduction Mode Boost PFC Control IC Design
指導教授: 陳建富
Chen, Jiann-Fuh
學位類別: 碩士
Master
系所名稱: 電機資訊學院 - 電機工程學系
Department of Electrical Engineering
論文出版年: 2024
畢業學年度: 113
語文別: 英文
論文頁數: 94
中文關鍵詞: 交-直流轉換器邊界導通時間控制功率因數修正器
外文關鍵詞: AC-DC converter, Boundary Conduction control, Power factor Corrector
相關次數: 點閱:67下載:0
分享至:
查詢本校圖書館目錄 查詢臺灣博碩士論文知識加值系統 勘誤回報
  • 摘要 II ABSTRACT IV 誌 謝 VI CONTENTS VII LIST OF FIGURES IX LIST OF TABLES XIII CHAPTER 1 INTRODUCTION 1 1.1 Research Background and Purpose 1 1.2 Structure 3 CHAPTER 2 LITERATURE REVIEW 4 2.1 Topologies of Power Factor Correction 4 2.2 Buck Type PFC [4] 8 2.3 Boost Type PFC [12] 8 2.4 Buck-Boost Type PFC [12] 9 2.5 Flyback Type PFC [12] 10 CHAPTER 3 METHODOLOGY 13 3.1 Literature review on PFC control methods 14 3.2 Average current mode [23] 14 3.3 Peak current mode (BCM) [23] 16 3.4 Hysteresis current control [23] 18 3.5 One cycle control [15-16] 20 3.6 Constant on time control [24] 25 CHAPTER 4 KEY PARAMETERS DESIGN 31 4.1 Parameters Design 34 4.2 Reset-Timer 35 4.3 Zero Current Detect 36 4.4 Edge Detector 38 4.5 Pulse Width Modulation (PWM) 40 4.6 On-Time Modulation 41 4.7 CMOS-circuit design [33-35] 43 CHAPTER 5 SIMULATION AND EXPERIMENTAL RESULTS 51 5.1 Sub-circuit simulation 51 5.1.1 Two-stage OP AMP 51 5.1.2 Sawtooth 54 5.1.3 Reset timer 55 5.1.4 Zero current detect 56 5.2 System simulation 57 5.3 Layout Results 68 5.4 Experimental Results 72 CHAPTER 6 CONCLUSIONS AND FUTURE WORKS 75 6.1 Conclusions 75 Conclusion 75 6.2 Future Works 77 REFERENCES 78

    [1] A. Nag and R. J. Haddad, "Critical conduction mode boost PFC converter with fixed switching frequency control," in Proc. IEEE Int. Conf. Smart Grid Communications, 2018, pp. 122–127.
    [2] M. M. Jovanovic and Y. Jang, "State-of-the-art, single-phase, active power-factor-correction techniques for high-power applications—An overview," IEEE Trans. Ind. Electron., vol. 52, no. 3, pp. 701–708, May 2005.
    [3] J. Zhang, Y. Zhang, S. Zaman, R. Cao, X. Cao, and M. Cao, "Precise Correction of Current Zero-Crossing Distortion of Totem Pole PFC Converter," in Proceedings of the IEEE International Conference on Power Electronics and Energy Systems, Xi'an, China, 2020.
    [4] H.-Y. Hsieh and K.-H. Chen, "Wide input range control non-isolated buck power factor correction light emitting diode driver IC," M.S. thesis, Dept. of Electrical Engineering, National Chiao Tung University, Hsinchu, Taiwan, 2016.
    [5] O. Garcia, J. A. Cobos, R. Prieto, P. Alou, and J. Uceda, "Single phase power factor correction: A survey," IEEE Trans. Power Electron., vol. 18, no. 3, pp. 749–755, May 2003.
    [6] T. Friedli, M. Hartmann, and J. W. Kolar, "The essence of three-phase PFC rectifier systems—Part II," IEEE Trans. Power Electron., vol. 29, no. 2, pp. 543–560, Feb. 2014.
    [7] J.-M. Wang, S.-T. Wu, Y. Jiang, and H.-J. Chiu, "A dual-mode controller for the boost PFC converter," IEEE Trans. Ind. Electron., vol. 58, no. 1, pp. 369–372, Jan. 2011.
    [8] K. Raggl, T. Nussbaumer, G. Doerig, J. Biela, and J. W. Kolar, "Comprehensive design and optimization of a high power density single-phase boost PFC," IEEE Trans. Ind. Electron., vol. 56, no. 7, pp. 2574–2587, Jul. 2009.
    [9] T. Nussbaumer, K. Raggl, and J. W. Kolar, "Design guidelines for interleaved single-phase boost PFC circuits," IEEE Trans. Power Electron., vol. 56, no. 7, pp. 2559–2573, Jul. 2009.
    [10] J.-H. Park, D. J. Kim, and K.-B. Lee, "Predictive control algorithm including conduction-mode detection for PFC converter," IEEE Trans. Ind. Electron., vol. 63, no. 9, pp. 5900–5911, Sep. 2016.
    [11] ON Semiconductor, "NCP1607: Cost-effective power factor controller," Datasheet, Mar. 2015.
    [12] K.-Y. Hu, Y.-Y. Tsai, S.-M. Wang, and C.-H. Tsai, "High power factor boost PFC controller with feedforward adaptive on-time control," in Proc. IEEE, 2016.
    [13] J.-C. Tsai, C.-L. Chen, Y.-T. Chen, C.-L. Ni, C.-Y. Chen, K.-H. Chen, C.-J. Chen, and H.-L. Huang, "Perturbation on-time (POT) control and inhibit time control (ITC) in suppression of THD of power factor correction (PFC) design," in Proc. IEEE Custom Integrated Circuits Conf. (CICC), San Jose, CA, USA, 2011.
    [14] Y.-P. Su, C.-Y. Chen, C.-L. Ni, Y.-C. Kang, Y.-T. Chen, J.-C. Tsai, K.-H. Chen, and S.-M. Wang, "92% high efficiency and low current mismatch interleaving power factor correction controller with variable sampling slope and automatic loading detection techniques," IEEE Trans. Power Electron., vol. 28, no. 11, pp. 5159–5173, Nov. 2013.
    [15] K.-C. Chang, K.-H. Chen, T.-J. Liang, and B.-D. Liu, "Design of one-cycle control power factor correction IC with unipolar supply voltage," in Proc. IEEE Int. Symp. on Circuits and Systems (ISCAS), Taipei, Taiwan, May 2009.
    [16] L. Zheren, K. M. Smedley, and M. Yunhong, "Time quantity one-cycle control for power-factor correctors," IEEE Trans. Power Electron., vol. 12, pp. 369–375, 1997.
    [17] M. T. Chuang, S.-Y. Chang, T.-C. Hsiao, Y.-R. Lu, and T.-Y. Yang, "Analyzing major renewable energy sources and power stability in Taiwan by 2030," Energy Policy, vol. 125, pp. 293–306, 2019.
    [18] D. Paschedag and M. Ferdowsi, "Elimination of zero-crossing distortion in a power factor correction circuit," in Proc. IEEE Energy Conversion Congress and Exposition (ECCE), Raleigh, NC, USA, Sep. 2012.
    [19] K.-H. Chou, T.-J. Liang, K.-H. Chen, and J.-S. Lee, "Design and implementation of an interleaved BCM boost PFC control IC," in Proc. Int. Power Electronics Conf. (IPEC-Hiroshima 2014 - ECCE Asia), Hiroshima, Japan, May 2014.
    [20] STMicroelectronics, "L6561 power factor corrector controller," Datasheet, 2003.
    [21] Fairchild Semiconductor, "FAN9611 / FAN9612 interleaved dual BCM PFC controllers," Datasheet, Apr. 2011.
    [22] W. Yubin and L. Jiwen, "A novel high-performance single-phase PFC approach based on one-cycle control," in Proc. IEEE Int. Industrial Electronics Conf., 2006, pp. 1763–1768.
    [23] L. Rossetto, "Control techniques for power factor correction converters," in Proc. PEMC'94, 1994, pp. 1310–1318.|
    [24] S. Zhou, Power Chip Modeling and Application: Practical Design Based on SIMPLIS, 1st ed. Beijing, China: Tsinghua Univ. Press, 2023.
    [25] B. Choi, S.-S. Hong, and H. Park, "Modeling and small-signal analysis of controlled on-time boost power-factor-correction circuit," IEEE Trans. Ind. Electron., vol. 48, no. 1, pp. 136–144, Feb. 2001.
    [26] Texas Instruments, "UC3854: Enhanced high power factor pre-regulator," Datasheet.
    [27] ON Semiconductor, "Implementing cost-effective and robust power factor correction with the NCP1607," Application Note AND8353/D, 2011.
    [28] ON Semiconductor, Power Factor Correction (PFC) Handbook: Choosing the Right Power Factor Controller Solution, Rev. 5, HBD853/D, Apr. 2014.
    [29] K.-H. Chen, Power Management Techniques for Integrated Circuit Design. Singapore: John Wiley & Sons, 2016.
    [30] Y.-N. Li, Y.-T. Yang, Z.-M. Zhu, and Q. Wei, "Design of zero-crossing distortion of Boost power factor correction (PFC) based on feedforward current control slope compensation," J. Electron. Meas. Instrum., vol. 24, no. 4, 2010.
    [31] C. Hangseok and L. Balogh, "A cross-coupled master–slave interleaving method for boundary conduction mode (BCM) PFC converters," IEEE Trans. Power Electron., vol. 27, pp. 4202–4211, 2012.
    [32] P. Kundur, "Power system stability," in Power System Stability and Control, 10th ed. 2007, pp. 7-1.
    [33] R. Gregorian, Introduction to CMOS OP-Amps and Comparators. New York, NY, USA: John Wiley & Sons, 1999.
    [34] T. C. Carusone, D. Johns, and K. Martin, Analog Integrated Circuit Design, 2nd ed. Hoboken, NJ, USA: John Wiley & Sons, 2013.
    [35] B. Razavi, Design of Analog CMOS Integrated Circuits, 2nd ed. New York, NY, USA: McGraw-Hill, 2017.

    無法下載圖示 校內:2030-01-24公開
    校外:2030-01-24公開
    電子論文尚未授權公開,紙本請查館藏目錄
    QR CODE