|
|
Research on Bi-directional Quasi-resonant Zero Voltage Switching DC-DC Converter for Flywheel Energy Storage System |
Zhang Weiya1, Wang Ziyu2, Tang Wenjie1, Zhang Keke2, Yuan Ding2 |
1. Nanjing Electrical Power Company, Nanjing 210019; 2. Xuzhou Electrical Power Company, Xuzhou, Jiangsu 221000 |
|
|
Abstract Flywheel energy storage system (FESS) is very important in the future for its high efficiency, energy saving and clean. Although there are some products in the market currently, the high-power FESS is still under investigation. A bidirectional DC-DC circuit applied in the high-power FESS was proposed in this paper, which used quasi-resonant zero voltage switching (QRZVS) technique and achieved the two-way flow of energy. The QRZVS had characteristics such as simplified structure and low switching loss, realized the ability of quick charge & discharge and reduced the electromagnetic interference (EMI) level of the system.
|
Published: 13 December 2016
|
|
|
|
Cite this article: |
Zhang Weiya,Wang Ziyu,Tang Wenjie等. Research on Bi-directional Quasi-resonant Zero Voltage Switching DC-DC Converter for Flywheel Energy Storage System[J]. Electrical Engineering, 2016, 17(12): 20-24.
|
|
|
|
URL: |
http://dqjs.cesmedia.cn/EN/Y2016/V17/I12/20
|
[1] Patel, Jigar, et al. Bi-directional DC-DC converter for battery charging—Discharging applications using buck-boost switch[C]//Electrical, Electronics and Computer Science (SCEECS), 2012 IEEE Students' Conference on. IEEE, 2012. [2] Chen G, Lee Y S, Xu D, et al. A novel soft-switching and low-conduction-loss bidirectional DC-DC conver- ter[C]//Power Electronics and Motion Control Con- ference, 2000. IEEE, 2000. [3] Smith K M, Smedley K M. Engineering design of lossless passive soft switching methods for PWM converters-Part I: With minimum voltage stress circuit cells[J]. IEEE Transactions on Power Electronics, 2001, 16(3): 336-344. [4] Smith K M, Smedley K M. Engineering design of lossless passive soft switching methods for PWM converters-Part II. With non-minimum voltage stress circuit cells[J]. IEEE Transactions on Power Elec- tronics, 2002, 17(6): 864-873. [5] 牛全民, 张波, 罗萍, 等. Boost变换器断续导通模式的PSM同步开关映射模型[J]. 中国电机工程学报, 2006, 26(12): 62-66. [6] Tse K K CH, Huo S Y EA. Analysis and spectral characteristics of a spread-spectrum technique for conducted EMI suppression[J]. IEEE Transactions on Power Electronics, 2000, 15(2): 399-410. [7] Gonzalez D B J, Santolaria A EA. Conducted EMI reduction in power converters by means of periodic switching frequency modulation[J]. IEEE Transactions on Power Electronics, 2007, 22(6): 2271-2281. [8] Mutoh N N J, Kanesaki M. Multilayer power printed structures suitable for controlling EMI noises gener- ated in power converters[J]. IEEE Transactions on Industrial Electronics, 2003, 50(6): 1085-1094. [9] Patel H S, Hoft R G. Generalized techniques of harmonic elimination and voltage control in thyristor inverters: part II-voltage control techniques[J]. IEEE Transactions on Industry Applications, 1974(5): 666- 673. [10] Tesche F M, Karlsson T. EMC analysis methods and computational models[Z]. 1997. |
|
|
|