• Title/Summary/Keyword: voltage spike and parasitic ringing

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Design of a 2KW Soft-Switching ZVT Power Factor Correction Converter with Active Snubbers (능동 스너버를 갖는 2KW 소프트 스위칭 ZVT 역률 보정 컨버터 설계)

  • Park, Gyeong-Su;Kim, Yun-Ho
    • The Transactions of the Korean Institute of Electrical Engineers B
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    • v.50 no.9
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    • pp.473-478
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    • 2001
  • In this paper a soft switching ZVT(Zero Voltage Transition) power factor converter using active snubbers is designed to improve efficiency and reduce voltage spike and parasitic ringing. The main switch achieves ZVT and the auxiliary switch operates with ZCS. A 2KW soft switching ZVT converter is designed with switching frequency 100kHz, output voltage 400VDC. Then the designed system is realized and experimental results show that the measured efficiency and power factor are over 97.45% and 0.997 respectively with an input current THD less than 3%.

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Design of A 2KW Soft-Switching ZVT Power Factor Correction Converter With Active Snubbers

  • Park, Kyoung-Soo;Kim, Yoon-Ho
    • Proceedings of the KIPE Conference
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    • 2001.10a
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    • pp.790-794
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    • 2001
  • In this paper a soft switching ZVT power factor converter using active snubbers is designed to improve efficiency and reduce voltage spike and parasitic ringing. The main switch achieves ZVT and the auxiliary switch performs with ZCS. A 2KW soft switching ZVT converter is designed with switching frequency 100kHz, output voltage 400VDC. Then the designed system is realized and experimental results show that the measured efficiency and power factor are over $97.45\%$ and 0.997 respectively with an input current THD less than $3\%$.

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A Study on the Soft-Switching Forward-Flyback Converter Using Auxiliary Inductor and Auxiliary Diode (보조 인덕터와 보조 다이오드를 적용한 소프트-스위칭이 가능한 포워드-플라이백 컨버터에 관한 연구)

  • Lee, A-Ra;Park, Jun-Woo;Hong, Sung-Soo
    • The Transactions of the Korean Institute of Power Electronics
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    • v.22 no.2
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    • pp.140-149
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    • 2017
  • This study proposes a new type of active-clamp forward-flyback converter with two transformers that operate in forward and flyback modes during on and off times, respectively, instead of not using an output inductor. The main switch can be turned on with zero-voltage switching (ZVS) using the leakage inductance of the transformer and the output capacitor of the main switch. The leakage inductance should be increased to ZVS. However, the ringing between the leakage inductance of the transformer and the parasitic output capacitance of the secondary side rectifier switches results in a serious voltage spike. A forward-flyback converter employing auxiliary inductor and auxiliary diode is proposed to overcome the problem. The operational principles are analyzed in detail and validated through experiments with a 385 V-to-53 V/37 A prototype.

A Study on Implementing a Phase-Shift Full-Bridge Converter Employing an Asynchronous Active Clamp Circuit

  • Lee, Yong-Chul;Kim, Hong-Kwon;Kim, Jin-Ho;Hong, Sung-Soo
    • Journal of Power Electronics
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    • v.14 no.3
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    • pp.413-420
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    • 2014
  • The conventional Phase-Shift Full-Bridge (PSFB) converter has a serious voltage spike because of the ringing between the leakage inductance of the transformer and the parasitic output capacitance of the secondary side rectifier switches. To overcome this problem, an asynchronous active clamp technique employing an auxiliary DC/DC converter has been proposed. However, an exact analyses for designing the auxiliary DC/DC converter has not been presented. Therefore, the amount of power that is supposed to be handled in the auxiliary DC/DC converter is calculated through a precise mode analyses in this paper. In addition, this paper proposes a lossy snubber circuit with hysteresis characteristics to reduce the burden that the auxiliary DC/DC converter should take during the starting interval. This technique results in optimizing the size of the magnetic component of the auxiliary DC/DC converter. The operational principles and the theoretical analyses are validated through experiments with a 48V-to-30V/15A prototype.