Design and Implementation of Self-Oscillating Flyback Converter with Efficiency-Enhancement Mechanisms

碩士 === 國立成功大學 === 電機工程學系 === 102 === This thesis presents a self-oscillating flyback converter with efficiency enhancement mechanisms using lossless snubber and the energy recovery winding. The conventional self-oscillating flyback converter with RCD snubber has the issues of low conversion efficien...

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Bibliographic Details
Main Authors: Shih-Ho Hsu, 許世和
Other Authors: 林瑞禮
Format: Others
Language:en_US
Published: 2013
Online Access:http://ndltd.ncl.edu.tw/handle/34297550876569623395
Description
Summary:碩士 === 國立成功大學 === 電機工程學系 === 102 === This thesis presents a self-oscillating flyback converter with efficiency enhancement mechanisms using lossless snubber and the energy recovery winding. The conventional self-oscillating flyback converter with RCD snubber has the issues of low conversion efficiency and high no-load power loss. Furthermore, in order to fulfill the 95Vp-p voltage limitation of IEC62684 common mode (CM) Standard, the parasitic capacitor of a transformer between the primary and secondary windings has to be reduced, which leads to large leakage inductance for the transformer. However, the larger leakage inductance stores more energy to cause the high voltage spike on the main switch during the turn-off transition period. Therefore, the lossless snubber is employed to suppress the voltage spike and increase the conversion efficiency. In order to increase more conversion efficiency, the energy recovery winding is employed to recycle the energy discharged from the gate-source capacitor of the main switch. Furthermore, the burst mode control mechanism is utilized to reduce the power consumption at the no-load and light-load conditions. Finally, a prototype circuit of the 7.5W self-oscillating flyback converter with efficiency enhancement mechanisms is built to verify the performances, such as the common mode voltage, the voltage stress on the switch, the conversion efficiency, and the no-load power loss.