• Title/Summary/Keyword: ZVS converter

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A Study on a Boost-Input Self-Driven Active Clamp ZVS Converter (자기구동 능동 클램프를 이용한 부스트 입력형 ZVS 컨버터에 관한 연구)

  • Jin, Ho-Sang;Kim, Hee-Jun
    • The Transactions of The Korean Institute of Electrical Engineers
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    • v.60 no.4
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    • pp.781-788
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    • 2011
  • This paper proposes a boost-input self-driven active clamp ZVS converter eliminating the extra dirve circuit for the active clamp switch. The converter used the auxiliary winding of the transformer to drive the active clamp switch and to achieve asymmetrical duty control. This paper presents the operation principle and the analyzed results of dynamic characteristics including steady state characteristics of the converter proposed. The experimental results were used to verify the theoretical predictions. A 300W (15V/20A) prototype converter that only exhibited 2-turn winding number in the auxiliary winding was sufficient to drive the active clamp switch on the input voltage of 80V. Finally, the maximum efficiency of 91.2% was achieved for the prototype converter and the proposed converter had stable closed loop characteristic with phase margin $55^{\circ}$.

High Efficiency Active Clamp Forward Converter with Synchronous Switch Controlled ZVS Operation

  • Lee Sung-Sae;Choi Seong-Wook;Moon Gun-Woo
    • Journal of Power Electronics
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    • v.6 no.2
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    • pp.131-138
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    • 2006
  • An active clamp ZVS PWM forward converter using a secondary synchronous switch control is proposed in this paper. The proposed converter is suitable for low-voltage and high-current applications. The structure of the proposed converter is the same as a conventional active clamp forward converter. However, since it controls the secondary synchronous switch to build up the primary current during a very short period of time, the ZVS operation is easily achieved without any additional conduction losses of magnetizing current in the transformer and clamp circuit. Furthermore, there are no additional circuits required for the ZVS operation of power switches. Therefore, the proposed converter can achieve high efficiency with low EMI noise, resulting from soft switching without any additional conduction losses, and shows high power dens~ty, a result of high efficiency, and requires no additional components. The operational principle and design example are presented. Experimental results demonstrate that the proposed converter can achieve an excellent ZVS performance throughout all load conditions and demonstrates significant improvement in efficiency for the 100W (5V, 20A) prototype converter.

ZVS Phase Shift Full-Bridge Converter's Small Signal Modeling and Digital Controller Design (ZVS 위상천이 풀브리지 컨버터의 소신호 모델링 및 디지털 제어기 설계)

  • Kim, Jeong-Woo;Cho, Younghoon;Choe, Gyu-Ha
    • Proceedings of the KIPE Conference
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    • 2014.07a
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    • pp.321-322
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    • 2014
  • In this paper, a zero-voltage switching (ZVS) phase shift full-bridge converter is analyzed. The small-signal model is derived to design a digital controller. PLECS simulation shows how sampling method effects on transfer function of ZVS phase shift full-bridge converter.

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Hybrid ZVS Converter with a Wide ZVS Range and a Low Circulating Current

  • Lin, Bor-Ren;Chen, Jia-Sheng
    • Journal of Power Electronics
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    • v.15 no.3
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    • pp.652-659
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    • 2015
  • This paper presents a new hybrid soft switching dc-dc converter with a low circulating current and high circuit efficiency. The proposed hybrid converter includes two sub-converters sharing two power switches. One is a three-level PWM converter and the other is a LLC converter. The LLC converter and the three-level converter share the lagging-leg switches and extend the zero-voltage switching (ZVS) range of the lagging-leg switches from nearly zero to full load since the LLC converter can be operated at fsw (switching frequency) $\approx$ fr (series resonant frequency). A passive snubber is used on the secondary side of the three-level converter to decrease the circulating current on the primary side, especially at high input voltage and full load conditions. Thus, the conduction losses due to the circulating current are reduced. The output sides of the two converters are connected in series. Energy can be transferred from the input voltage to the output load within the whole switching period. Finally, the effectiveness of the proposed converter is verified by experiments with a 1.44kW prototype circuit.

A Study on the Development of ZVS Half-Bridge Converter for PDP Drive (PDP 구동을 위한 ZVS Half-Bridge 컨버터 개발에 관한 연구)

  • Ceong, Cin-Beom;Kim, Hee-Jun
    • Proceedings of the KIEE Conference
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    • 2002.07b
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    • pp.1117-1119
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    • 2002
  • In this paper, we have developed a ZVS half-bridge converter with a clamping circuit for the DC power source of PDP circuit. The clamping circuit in the developed converter reduces the oscillating current of the switch by resonant inductor and parasitic parameters in output rectifier diodes. Finally, comparing the experimental results of the developed converter to the conventional ZVS half-bridge converter, it is clarified that the developed converter is more efficient and lower noise than the conventional one.

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Full ZVS Load Range Diode Clamped Three-level DC-DC Converter with Secondary Modulation

  • Shi, Yong
    • Journal of Power Electronics
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    • v.16 no.1
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    • pp.93-101
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    • 2016
  • A new four-primary-switch diode clamped soft switching three-level DC-DC converter (TLDC) with full zero-voltage switching (ZVS) load range and TL secondary voltage waveform is proposed. The operation principle and characteristics of the presented converter are discussed, and experimental results are consistent with theoretical predictions. The improvements of the proposed converter include a simple and compact primary structure, TL secondary rectified voltage waveform, wide load range ZVS for all primary switches, and full output-regulated range with soft switching operation. The proposed converter also has some disadvantages. The VA rating of the transformer is slightly larger than that of conventional TLDCs in variable input and constant output mode. The conduction loss of the primary coil is slightly higher because an air gap is inserted into the magnetic cores of the transformer. Finally, the secondary circuit is slightly complex.

ZVS Operating Range Extension Method for High-Efficient High Frequency Linked ZVS-PWM DC-DC Power Converter

  • Sato S.;Moisseev S.;Nakaoka M.
    • Proceedings of the KIPE Conference
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    • 2003.07a
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    • pp.227-230
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    • 2003
  • In this paper, a full bridge edge-resonant zero voltage mode based soft-switching PWM DC-DC power converter with a high frequency center tapped transformer link stage is presented from a practical point of view. The power MOSFETS operating as synchronous rectifier devices are implemented in the rectifier center tapped stage to reduce conduction power losses and also to extend the transformer primary side power MOSFETS ZVS commutation area from the rated to zero-load without a requirement of a magnetizing current. The steady-state operation of this phase-shift PWM controlled power converter is described in comparison with a conventional ZVS phase-shift PWM DC-DC converter using the diodes rectifier. Moreover, the experimental results of the switching power losses analysis are evaluated and discussed in this paper. The practical effectiveness of the ZVS phase-shift PWM DC-DC power converter treated here is actually proved by using 2.5kW-32kHz breadboard circuit. An actual efficiency of this converter is estimated in experiment and is achieved as 97$\%$ at maximum.

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A Study on the BUCK ZC-ZVS Converter with Reduced Conduction Losses (도통손실을 감소시킨 강압형 영전류-영전압 컨버터에 관한 연구)

  • Lee, Yo-Seop;Lee, Won-Seok;Lee, Seong-Baek
    • The Transactions of the Korean Institute of Electrical Engineers B
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    • v.48 no.12
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    • pp.686-691
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    • 1999
  • In a switching power supply, the high frequency switching makes the passive components small, but the losses and the stresses of switches are increased by the switching frequency. Therefore, zero crossing technology using resonant is used to improve defect in high switching. In generally, zero crossing switching consists of Zero Current Switching(ZCS) and Zero Voltage Switching(ZVS). This paper proposes A Buck ZC-ZVS Converter with Reduced Conduction Losses. Comparing with a conventional Buck ZC-ZVS Converter, the proposed converter operates with the smaller rated power. This is achieved by changing the auxiliary switch position, which reduces its rating power. Simulation results using Pspice program about test circuit with rated 160W(30V, 5.3A) at 30kHz and experiment result under same condition were described in the paper.

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New ZVS Flyback Converter (새로운 영전압 스위칭 플라이 백 컨버터)

  • Song, Ki-Seung;Park, Jin-Hong;Lee, Sung-Paik
    • Proceedings of the KIEE Conference
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    • 1998.11a
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    • pp.115-116
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    • 1998
  • A flyback converter that decreases ZVS resonant voltage by using ZVS capacitor is proposed. Because of high resonant voltage at ZVS convenient circuits use expensive devices of high power. The devices make the total price high. A circuit with ZVS capacitor is proposed to down the price. A practical converter can be constructed. Operation of the converter is analyzed and simulated. We compare experiment results with simulation results. We show that the system is identical with the simulated system.

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THE CLAMP MODE FORWARD ZERO-VOLTAGE-SWITCHING MULTI-RESONANT-CONVERTER (CLAMP MODE에서 동작하는 ZVS-MRC FORWARD 콘버어터에 관한 연구)

  • Kim, Hee-Jun;Simun, Misri
    • Proceedings of the KIEE Conference
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    • 1991.11a
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    • pp.210-213
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    • 1991
  • The clamp mode Zero-Volatge-Switched Multi-Resonant-Converter(ZVS-MRC) is proposed. In the converter, the performance of the conventional ZVS-MRC is improved by clamping the drain-to-source voltage of the power switch using a soft switching nondissipative active clamp network. The analysis for each stage of the converter operation modes is presented and is verified by experiments.

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