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The Design of Single Phase PFC using a DSP  

Yang, Oh (School of Electronics and Information Engineering, Cheonju University)
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Abstract
This paper presents the design of single phase PFC(Power Factor Correction) using a DSP(TMS320F2812). In order to realize the proposed boost PFC converter in average current mode control, the DSP requires the A/D sampling values for a line input voltage, a inductor current, and the output voltage of the converter. Because of a FET switching noise, these sampling values contain a high frequency noise and switching ripple. The solution of A/D sampling keeps away from the switching point. Because the PWM duty is changed from 5% to 95%, we can#t decide a fixed sampling time. In this paper, the three A/D converters of the DSP are started using the prediction algorithm for the FET ON/OFF time at every sampling cycle(40 KHz). Implemented A/D sampling algorithm with only one timer of the DSP is very simple and gives the autostart of these A/D converters. From the experimental result, it was shown that the power factor was about 0.99 at wide input voltage, and the output ripple voltage was smaller than 5 Vpp at 80 Vdc output. Finally the parameters and gains of PI controllers are controlled by serial communication with Windows Xp based PC. Also it was shown that the implemented PFC converter can achieve the feasibility and the usefulness.
Keywords
Boost PFC converter; Sampling Algorithm; Serial communication; digital control; PI controller;
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1 W. Zhang, Yan-Fei Liu, and Bin Wu, 'A New Duty Cycle Control Strategy for Power Factor Correction and FPGA Implementation,' IEEE Trans. Power Electron., vol. 21, No. 6, pp. 1745-1753, Nov., 2006   DOI   ScienceOn
2 J. Zhou, Z. Lu, Z. Lin, Y. Ren, Z. Qian, and Y. Wang, 'Novel Sampling Algorithm for DSP Controlled 2 kW PFC Converter,' IEEE Trans. Power Electron., vol. 16, No. 2, pp. 217-222, Mar., 2001   DOI   ScienceOn
3 S. Buso et al., 'Simple digital control improving dynamic performance of power factor preregulators,' IEEE Trans. Power Electron., vol. 13, pp. 814-823, Sept., 1998   DOI   ScienceOn
4 P. C. Todd, 'UC3854 controlled power factor correction circuit design,' U-134, Unitrode Application Note, pp. 3-269 - 3-288
5 Zhen Z. Ye, Milan M. Jovanovic, 'Implementation and Performance Evaluation of DSP-Based Control for Constant-Frequency Discontinuous-Conduction-Mode Boost PFC Front End,' IEEE Trans. Industrial Electronics, vol. 52, No.1, pp. 98-107, Feb., 2005   DOI   ScienceOn
6 A. de Castro, P. Zumel, O. Gaecia, T. Riesgo, and J. Uceda, 'Concurrent and simple digital controller of an ac/dc converter with power factor correction based of FPGA,' IEEE Trans. Power Electron., vol. 18, No. 1, pp. 334-343, Jan., 2003   DOI   ScienceOn
7 David M. Van de Sype, Koen De Gusseme, A. P. Van den Bossche, and Jan A.A. Melkebeek, 'A Sample Algorithm for Digitally Controlled Boost PFC Converters,' IEEE Trans. Power Electron., vol. 19, No. 3, pp. 649-657, May, 2004   DOI   ScienceOn
8 J. Chen, A. Prodic, R. W. Erickson, and D. Maksimovic, 'Predictive digital current programmed control,' IEEE Trans. Power Electron., vol. 18, No. 1, pp. 411-419, Jan., 2003   DOI   ScienceOn
9 W. Zhang, Guan Feng, Yan-Fei, and Bin Wu, 'A Digital Factor Correction (PFC) Control Strategy Optimized for DSP,' IEEE Trans. Power Electron., vol. 19, No. 6, pp. 1471-1485, Nov., 2004
10 S. Choudhury, 'Average current mode controlled power factor correction converter Using TMS320LF2407A,' Texas Instruments Application Note SPRA902A, pp. 1-14, Jul. 2005