• Title/Summary/Keyword: active-clamp circuit

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A Study on PFC of Active Clamp ZVS Flyback Converter

  • Choi Tae-Young;Ahn Jeong-Joon;Ryu Dong-Kyun;Lee Woo-Suk;Won Chung-Yuen;Kim Soo-Seok
    • Proceedings of the KIPE Conference
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    • 2001.10a
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    • pp.611-616
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    • 2001
  • This paper analyzed PFC of active clamp ZVS flyback converter by adding two methods PFC (power Factor Correction) circuit - two-stage and single-stage. The addition of active clamp circuit also provides a mechanism for achieving ZVS of both the primary and auxiliary switches. ZVS also limits the turn off di/dt of the output rectifier, reducing rectifier-switching loss and switching noise, due to diode reverse recovery. As a result, the proposed converters have characteristics of the reduced switching noise and high efficiency in comparison to conventional flyback converter. The simulation and experimental results show that the proposed converter improve the input PF of 300W ZVS flyback converter by adding single-stage, two-stage PFC circuit.

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Dynamic Characteristics of the Boost Input type ZVS Converter using the Active Clamp Circuit (Active Clamp 회로를 이용한 Boost 입력형 ZVS 컨버터의 동특성 해석)

  • Oh, Yong-Seung;Kim, Sung-Nam;Kim, Hee-Jun
    • Proceedings of the KIEE Conference
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    • 2002.04a
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    • pp.155-157
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    • 2002
  • Generally, design of feedback circuit for stable system is performed by pole-zero compensation. For the purpose of reliable and stable closed loop system, the compensator would be designed basing upon the analysis of dynamic characteristics. This paper presents analyzed results of dynamic characteristics of the boost input type ZVS converter using active-clamp circuit. The simulated results by using Matlab and the measured results by using HP4194A are presented.

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Dynamic Characteristics of Boost Input Type ZVS Converter using the Active Clamp Circuit (능동 클램프 회로를 이용한 Boost 입력형 ZVS 컨버터의 동특성 해석)

  • Kim, Seong-Nam;O, Yong-Seung;Kim, Hui-Jun
    • The Transactions of the Korean Institute of Electrical Engineers B
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    • v.51 no.10
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    • pp.595-600
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    • 2002
  • This paper presents the analyzed results of dynamic characteristics including steady state characteristics of the boost input type ZVS converter using the active clamp circuit by the state space averaging method. From the results, it can be seen that the converter has the 5th order transfer functions and the stable closed loop characteristic is obtained by using the compensated error amplifier with 2-pole and 1-zero. The validity of all analyzed results are verified by measurement.

A Study on PFC of Active Clamp ZVS Flyback Converter (능동 클램프 ZVS 플라이백 컨버터의 역률개선에 관한 연구)

  • Choi T.Y.;Ahn J.J.;Ryu D.K.;Lee W.S.;Won C.Y.;Kim S.S.
    • Proceedings of the KIPE Conference
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    • 2001.07a
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    • pp.538-541
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    • 2001
  • This paper analyzed PFC of active clamp ZVS flyback converter by adding two method PFC (Power Factor Correction) circuit - Two-Stage and Single-Stage. It improves on Flyback converter's disadvantage - loss increasing by switching, noise increasing, high voltage stress of switch - by adding active clamp circuit. Simulation results show to improve the input PF of 300W ZVS flyback converter by adding Single-Stage, Two-Stage PFC circuit.

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A Study on PFC of Active Clamp ZVS Flyback Converter (능동 클램프 ZVS 플라이백 컨버터의 역률개선에 관한 연구)

  • 최태영;류동균;이우석;안정준;원충연;김수석
    • Journal of the Korean Institute of Illuminating and Electrical Installation Engineers
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    • v.15 no.6
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    • pp.49-57
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    • 2001
  • This paper analyzed PFC of active clamp ZVS flybark converter by adding two method PFC (Power Factor Correction) circuit-two-stage and single-stage. The addition of active clamp circuit also provide a mechanism fur achieving ZVS of both the primary and auxiliary switches. ZVS also limits the turn off di/dt of the output rectifier, reducing rectifier switching loss and switching noise, due to diode reverse recovery. As a results, the proposed converters have characteristics of the reduced switching noise and high efficiency in comparison to conventional flyback converter. The simulation and experimental results show that the proposed converters improve the input PF of 300[W] ZVS flyback converter by adding single-stage two-stage PFC circuit.

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Forward Converter Using 300W Planar Transformer (300W 평면 변압기적용 포워드 컨버터)

  • Choi, S.H;Park J.Y;Kim E.S
    • The Transactions of the Korean Institute of Power Electronics
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    • v.9 no.6
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    • pp.560-567
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    • 2004
  • In this paper, the design and implementation of a high power(300W) forward converter using a planar transformer is presented. The overall size and volume of the converter is decreased by replacing a planar transformer in stead of using a conventional winding transformer. Due to the decreased size and volume, power density of the applied forward converter is increased. Also, in this paper, the 300W ZVS forward converter with active clamp snubber circuit is compared to the 300W hard switching forward converter planar transformer, the decreased size and volume, the 300W ZVS forward converter with active clamp snubber circuit, 30W hard switching forward converter.

Analysis and Design of High-Power, High-Frequency Charging Circuit using FB-ZVS Converter (FB-ZVS 콘버터를 이용한 대용량.고주파 충전회로의 해석 및 설계)

  • Lee, Ki-Young;Cha, Young-Kil;Jung, Jong-Jin;Kim, Heung-Geun
    • Proceedings of the KIEE Conference
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    • 1996.07a
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    • pp.453-457
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    • 1996
  • DC/DC converter is widely used in computer, electronic communication and industrial apparatus where the regulated dc supply is needed. FB-ZVS converter is suitable for high-power, high-frequency and constant frequency control. Because the voltage stress of the diode rectifier is high due to the ring effect, the clamp circuit is essential to reduce the voltage stress. The nondissipative active clamp circuit eliminates ring effect. Analysis of FB-ZVS converter and the validity of the active clamp circuit are studied through the simulation, and the experimental results show the superior characterics of the proposed system.

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A Fuel Cell Generation System with a New Active Clamp Sepic-Flyback Converter

  • Lee, Won-Cheol;Jang, Su-Jin;Kim, Soo-Seok;Lee, Su-Won;Won, Chung-Yuen
    • Journal of Power Electronics
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    • v.9 no.1
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    • pp.26-35
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    • 2009
  • A high efficiency active clamp sepic-flyback converter is presented for fuel cell generation systems. The proposed converter is a superposition of a sepic converter mode and. flyback converter mode. The output voltages of the sepic converter mode and flyback converter mode can be regulated by the same PWM technique with constant frequency. By merging the sepic and flyback topologies, they can share the transformer, power MOSFET and active clamp circuit. The result has outstanding advantages over conventional active clamp DC-DC converters: high efficiency, high power density, and component utilization. Simulation results and experimental results are presented to verify the principles of operation for the proposed converter.

A Study on the Design of the High Power Active Clamp ZVS Flyback Converter for Semiconductor Plasma Etching System (반도체 플라즈마 용융장치용 고출력 능동 클램프 ZVS 플라이백 컨버터 설계에 관한 연구)

  • 이우석
    • Proceedings of the KIPE Conference
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    • 2000.07a
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    • pp.400-403
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    • 2000
  • This paper deals with the active clamp ZVS flyback converter for semiconductor plasma etching system. The proposed converter has the characteristics of the good power facter low switching noise and efficiency improvement. The characteristics are verified through simulation results. Furthermore the ringing effect due to output capacitance of the main switch can be eliminated by use of active clamp circuit.

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Characteristics of Boost Input Type Active Clamp Forward ZVS Converter (Boost 입력형 능동클램프 Forward ZVS Converter)

  • Oh Yong-Seung;Kim Hee-Jun
    • Proceedings of the KIPE Conference
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    • 2002.07a
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    • pp.386-389
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    • 2002
  • This paper proposes the boost input type active clamp forward ZVS(zero voltage switching) DC-DC converter which can provide high efficiency and improved EMI characteristics. Moreover, it has active clamp circuit for reducing the voltage stress and zero voltage switching technique for minimizing switching loss. The detailed operation principles and the simulation results are presented.

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