• Title/Summary/Keyword: Snubber Circuit

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A Single Stage Isolated Power Factor Correction Using clamping Circuit (클램핑 회로를 이용한 단계층 절연 역률 보정)

  • 서재호;이희승
    • Proceedings of the KIPE Conference
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    • 1998.07a
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    • pp.319-322
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    • 1998
  • In this paper we further propose to add a very simple regenerative clamping circuit to SSIPP to reduce the voltage stress and to recycle the energy trapped in the leakage inductance of the isolation transformer, thus eliminating the need for a lossy snubber circuit. In addition, this proposed clamping circuit also provides a mechanism to reset the magnetizing current of the output transformer of SSIPP employing a Forward converter as the output stage. Simulations and experimental results are reported to verify the operation and performance of the SSIPP with regenerative clamping.

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Three-Phase PWM Inverter and Rectifier with Two-Switch Auxiliary Resonant DC Link Snubber-Assisted

  • Nagai Shinichiro;Sato Shinji;Matsumoto Takayuki
    • Journal of Power Electronics
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    • v.5 no.3
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    • pp.233-239
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    • 2005
  • In this paper, a new conceptual circuit configuration of a 3-phase voltage source, soft switching AC-DC-AC converter using an IGBT module, which has one ARCPL circuit and one ARDCL circuit, is presented. In actuality, the ARCPL circuit is applied in the 3-phase voltage source rectifier side, and the ARDCL circuit is in the inverter side. And more, each power semiconductor device has a novel clamp snubber circuit, which can save the power semiconductor device from voltage and current across each power device. The proposed soft switching circuits have only two active power semiconductor devices. These ARCPL and ARDCL circuits consist of fewer parts than the conventional soft switching circuit. Furthermore, the proposed 3-phase voltage source soft switching AC-DC-AC power conversion system needs no additional sensor for complete soft switching as compared with the conventional 3-phase voltage source AC-DC-AC power conversion system. In addition to this, these soft switching circuits operate only once in one sampling term. Therefore, the power conversion efficiency of the proposed AC-DC-AC converter system will get higher than a conventional soft switching converter system because of the reduced ARCPL and ARDCL circuit losses. The operation timing and terms for ARDCL and ARCPL circuits are calculated and controlled by the smoothing DC capacitor voltage and the output AC current. Using this control, the loss of the soft switching circuits are reduced owing to reduced resonant inductor current in ARCPL and ARDCL circuits as compared with the conventional controlled soft switching power conversion system. The operating performances of proposed soft switching AC-DC-AC converter treated here are evaluated on the basis of experimental results in a 50kVA setup in this paper. As a result of experiment on the 50kVA system, it was confirmed that the proposed circuit could reduce conduction noise below 10 MHz and improve the conversion efficiency from 88. 5% to 90.5%, when compared with the hard switching circuit.

Auxiliary resonant DC Link and power loss analysis of three phase voltage type inverter (보조 공진 DC 링크 스너버형 컨버터와 3상 전압형 인버터의 전력손실분석)

  • Kim, J.Y.;Mun, S.P.;Kim, Y.M.;Lee, H.W.;Suh, K.Y.
    • Proceedings of the KIEE Conference
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    • 2002.07b
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    • pp.1064-1066
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    • 2002
  • This paper proposes a new prototype auxiliary resonant DC link(ARDCL)snubber circuit and deals with its power loss on the basis of actually measured conduction loss characteristic of switching device module. Voltage type soft switching three phase inverter using proposed ARDCL snubber circuit is presented along with its performance evaluations. And, the power loss analysis of three phase hard and soft switching inverter are carried out from the point of simulation and experimental results.

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A New Partial Resonant Switching $3\phi$ Boost Converter with High Efficiency Using Lossless Snubber (새로운 무손실 스너버를 이용한 부분공진형 고효율 $3\phi$ AC-DC 부스터 컨버터)

  • 전종함;서기영;이현우
    • Journal of the Korean Institute of Telematics and Electronics S
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    • v.34S no.9
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    • pp.118-125
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    • 1997
  • This paper proposed a new partial resonant 3.PHI. AC-DC boost converter of high efficiency using lossless snubber. The proposed converter, DCM (Discontinuous Current Mode) has a merit of simple controlled circuit because the input current control discontinuously. But turned off switching loss and stress of the switching device increase when the switch turned off at the peak of current. Therefore, the paper improves efficiency by adopting the PRS$^{2}$(Partial Resonant Soft Switching) in 3.PHI. AC-DC boost converter and makes the unity power factor. The PRS$^{2}$ is reduced a current/voltage stresses of switching devices. Also, a DCMPRS$^{2}$M(Discontinuous Conduction Mode Partial Resonant Soft Switching Method) appear the current and voltage equation of this circuit. The paepr examine in a 3.PHI. AC-DC boost converter and show the result of that.

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Soft-Switching Buck-Boost Converter with High Power Factor for PAM Inverter System

  • K. Taniguchi;T. Watanabe;T. Morizane;Kim, N. ura;Lee, Hyun-Woo
    • Proceedings of the KIPE Conference
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    • 1998.10a
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    • pp.264-269
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    • 1998
  • A proposed soft-switching buck-boost PWM converter has a lot of advantages, Viz., electric isolation, a high power factor, low switching losses, low EMI noise, reduction of the voltage and current stresses, etc. In a new PFC converter, the switching device is replaced by the loss-less snubber circuit to achieve the zero voltage switching (ZVS) at the maximum current. However, the charging current of the capacitor in the loss-less snubber circuit distorts the input current waveforms. To improve the input current waveform, a new duty factor control method is proposed in this paper.

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Analysis, Design and Implementation of an Improved ZVZCS-PWM Forward converter

  • Soltanzadeh, Karim;Dehghani, Majid;Khalilian, Hosein
    • Journal of Electrical Engineering and Technology
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    • v.9 no.1
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    • pp.197-204
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    • 2014
  • In this paper an Improved Zero Voltage Zero Current Pulse Width Modulation Forward converter which employs a simple resonance snubber circuit is introduced. A simple snubber circuit consists of a capacitor, an inductor and two diodes. In proposed converter, switch Q1 operates at ZCS turn-on, and ZVS turn-off conditions and all-passive semiconductor devices operate at ZVZCS turn-on and turn-off state. The proposed converter is analyzed and various operating modes of the ZVZCS-PWM forward converter are discussed. Analysis and design considerations are presented and the prototype experimental results of a 100w (40 V/2.5A) proposed converter operating at 30 KHz switching frequency confirm the validity of theoretical analysis.

Three Phase Voltage-ed Soft Switching Inverter using Auxiliary Resonant DC Link (보조공진 DC 링크 스너버를 이용한 3상 전압형 소프트 스위칭 인버터)

  • Kim, Ju-Yong;Suh, Ki-Young;Lee, Hyun-Woo;Mun, Sang-Pil;Ryu, Jae-Yup
    • Proceedings of the KIEE Conference
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    • 2002.04a
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    • pp.143-146
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    • 2002
  • This paper proposes a new auxiliary resonant DC link(ARDCL)snubber circuit and deals with its power loss on the basis of actually-measured conduction loss characteristic of switching device module. Voltage-ed soft switching three-phase inverter using proposed ARDCL snubber circuit is presented along with its performance evaluations. And, the power loss analysis of three-phase hard and soft switching inverter are carried out from the point of simulation and experimental results.

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Analysis and Implementation of a DC-DC Converter with an Active Snubber

  • Lin, Bor-Ren;Lin, Li-An
    • Journal of Power Electronics
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    • v.11 no.6
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    • pp.779-786
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    • 2011
  • This paper presents a soft switching converter to achieve the functions of zero voltage switching (ZVS) turn-on for the power switches and dc voltage step-up. Two circuit modules are connected in parallel in order to achieve load current sharing and to reduce the size of the transformer core. An active snubber is connected between two transformers in order to absorb the energy stored in the leakage and magnetizing inductances and to limit the voltage stresses across the switches. During the commutation stage of the two complementary switches, the output capacitance of the two switches and the leakage inductance of the transformers are resonant. Thus, the power switches can be turned on under ZVS. No output filter inductor is used in the proposed converter and the voltage stresses of the output diodes is clamped to the output voltage. The circuit configuration, the operation principles and the design considerations are presented. Finally, laboratory experiments with a 340W prototype, verifying the effectiveness of the proposed converter, are described.

Analysis on power loss of three-phase soft switching inverter (3상 소프트 스위칭 인버터의 전력손실에 관한 해석)

  • Kim, J.Y.;Mun, S.P.;Kim, Y.S.;Suh, K.Y.;Kim, Y.M.
    • Proceedings of the KIEE Conference
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    • 2002.06a
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    • pp.3-5
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    • 2002
  • This paper proposes a new prototype auxiliary resonant DC link(ARDCL)snubber circuit and deals with its power loss on the basis of actually measured conduction loss characteristic of switching device module. Voltage-type soft switching three phase inverter using proposed ARDCL snubber circuit is presented along with its performance evaluations. And, the power loss analysis of three phase hard and soft switching inverter are carried out from the point of simulation and experimental results.

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The Experimental Consideration about Loss of Three-phase Voltage-fed Inverter using Auxiliary Resonant DC Link (ARDCL을 이용한 3상 전압형 인버터의 손실에 관한 실험적 고찰)

  • 서기영;문상필;김주용;이상현;박영조
    • Journal of the Korean Institute of Illuminating and Electrical Installation Engineers
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    • v.17 no.4
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    • pp.100-105
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    • 2003
  • This paper proposes a new auxiliary resonant DC link(ARDCL)snubber circuit and deals with its power loss on the basis of actually-measured conduction loss characteristic of switching device module. Voltage-fed soft switching three-phase inverter using proposed ARDCL snubber circuit is presented along with its performance evaluations. And, the power loss analysis of three-phase hard and soft switching inverter are carried out from the point of simulation and experimental results.