胡玮, 康勇, 王学华, 等. 一种改进型双升压功率因数校正电路[J]. 电机与控制学报, 2013, 17(3): 40-48. Hu Wei, Kang Yong, Wang Xuehua. Improved dual Boost power factor correction converter[J]. Electric Machines and Control, 2013, 17(3): 40-48.
[2]
Liu Yaoping, Smedley K. A new passive soft-switching dual-Boost topology for power factor correction[C]. Power Electronics Specialist Conference, June 15-19, 2003, Irvine, CA, USA, 2003: 669-676.
[3]
王慧贞, 张军达. 一种新型无桥Boost PFC电路[J]. 电工技术学报, 2010, 25(5): 109-115. Wang Huizhen, Zhang Junda. A bridgeless Boost PFC converter[J]. Transactions of China Electrotechnical Society, 2010, 25(5): 109-115.
[4]
Hua Guichao, Leu Chingshan, Jiang Yimin, et al. Novel zero-voltage-transition PWM converters[J]. IEEE Transactions on Power Electronics, 1994, 9(2): 213-219.
[5]
Lu Di, Li Xiang, Liu Chen.PFC study based on ZVT-PWM soft switching technology[C]. Power Electronics for Distributed Generation Systems, Hefei, China, 2010: 148-151.
[6]
De Souza A F, Barbi I. A new ZVS-PWM unity power factor rectifier with reduced conduction losses[J]. IEEE Transactions on Power Electronics, 1995, 10(6): 746-752.
[7]
Du Zhongyi, Zhao Guoyou.Development of the high power factor high efficiency soft-switching power supply for telecommunication application[C]. Power Electronics and Motion Control Conference, Beijing, China, 2000: 473-475.
[8]
Lin Jonglick, Yang Sungpei, Yu Chihhsiung. Averaged modeling of a ZVT soft switching PFC converter[C]. Circuits and Systems, Tainan, 2004: 741-744.
[9]
Tseng Chingjung, Chen Chernlin. Novel ZVT-PWM converters with active snubbers[J]. IEEE Transactions on Power Electronics, 1998, 13(5): 861-869.
[10]
王玉斌, 厉吉文, 田召广, 等. 一种新型的基于单周控制的功率因数校正方法及实验研究[J]. 电工技术学报, 2007, 22(2): 137-143. Wang Yubin, Li Jiwen, Tian Zhaoguang, et al. A new PFC method and experimental study based on one- cycle control[J]. Transactions of China Electrotechnical Society, 2007, 22(2): 137-143.
[11]
王议锋, 徐殿国, 徐博, 等. 图腾柱式无桥零纹波交错并联Boost功率因数校正器[J]. 电工技术学报, 2011, 26(9): 175-182. Wang Yifeng, Xu Dianguo, Xu Bo, et al. An interleaved totem-pole bridgeless Boost PFC rectifier with zero- ripple current filter[J]. Transactions of China Electro- technical Society, 2011, 26(9): 175-182.
[12]
Gopinath M, Prabakaran, Ramareddy S. A brief analysis on bridgeless boost PFC converter[C]. Sustainable Energy and Intelligent Systems, Chennai, India, 2011: 242-246.
[13]
Kong Pengju, Wang Shuo, Lee F C. Common mode EMI noise suppression in bridgeless Boost PFC converter[C]. Applied Power Electronics Conference, Anaheim, CA, USA, 2007: 929-935.
[14]
Ye Haoyi, Yang Zhihui, Dai Jingya, et al. Common mode noise modeling and analysis of dual Boost PFC circuit[C]. Telecommunications Energy Conference, Shanghai, China, 2004: 575-582.
[15]
Huber L, Jang Yungtaek, Jovanovic M M. Performance evaluation of bridgeless PFC Boost rectifiers[J]. IEEE Transactions on Power Electronics, 2008, 23(3): 1381- 1390.
[16]
胡玮, 康勇, 周小宁. 一种含回路二极管双Boost PFC电路[J]. 电力电子技术, 2013, 47(7): 61-63, 98. Hu Wei, Kang Yong, Zhou Xiaoning. A dual Boost PFC circuit with return diodes[J]. Power Electronics, 2013, 47(7): 61-63, 98.
[17]
Kanaan H Y, Sauriol G, Alhaddad K. Small-signal modeling and linear control of a high efficiency dual Boost single-phase power factor correction circuit[J]. IEEE Transactions on Power Electronics, 2009, 2(6): 665-674.
[18]
Lee I O, Lee D Y, Cho B H. High performance Boost PFC pre-regulator with improved zero-voltage-transition (ZVT) converter[C]. Power Electronics Specialists Conference, Seoul, Korea, 2002, 3: 1387-1391.
[19]
Mahesh M, Panda A K. High-power factor three-phase ac-dc soft-switched converter incorporating zero-voltage transition topology in modular systems for high-power industry applications[J]. IEEE Transactions on Power Electronics, 2011, 4(9): 1032-1042.
[20]
Zhu Julian, Ding Daohong. Zero-voltage- and zero- current-switched PWM DC-DC converters using active snubber[J]. IEEE Transactions on Industry Applications, 1999, 35(6): 1406-1412.
[21]
阮新波, 严仰光. 直流开关电源的软开关技术[M]. 北京: 科学出版社, 2000.
[22]
Wang Chienming. A novel zero-voltage-switching PWM Boost rectifier with high power factor and low conduction losses[J]. IEEE Transactions on Industrial Electronics, 2005, 52(2): 427-435.