• Title/Summary/Keyword: Switching losses

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A New Zero Voltage Transition Bridgeless PFC with Reduced Conduction Losses

  • Mahdavi, Mohammad;Farzanehfard, Hosein
    • Journal of Power Electronics
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    • v.9 no.5
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    • pp.708-717
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    • 2009
  • In this paper a new zero voltage transition PWM bridgeless PFC is introduced. The auxiliary circuit provides soft switching condition for all semiconductor devices. Also, in the resonant path of the auxiliary circuit, only two semiconductor devices exist. Therefore the resonant conduction losses are low. Furthermore, the auxiliary circuit semiconductor elements consist of only one diode and one switch. The proposed auxiliary circuit is applied to a bridgeless PFC converter to further reduce conduction and switching losses. In this paper, the operating modes of this converter are explained and the resulting ideal and simulation waveforms are shown. The presented experimental results justify the theoretical analysis.

Efficiency Analysis of a Ladder Multilevel Converter with the Use of the Equivalent Continuous Model

  • Lopez, Andres;Patino, Diego;Diez, Rafael
    • Journal of Power Electronics
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    • v.14 no.6
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    • pp.1130-1138
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    • 2014
  • This study analyzes a ladder multilevel converter (double ladder topology) with the use of a new averaging modeling technique. This technique introduces an analytical method to compute for the switching losses and is used to conduct an in-depth analysis of the influence of the switching frequency and parasitic resistance of components on converter efficiency. The obtained results enable the selection of switches and switching frequency to minimize losses. Moreover, simulation results and experimental measurements validate the analytical calculations.

ZC-ZVS PWM DC-DC Converter using One Auxiliary Switch (단일 보조 스위치를 이용한 ZC-ZVS PWM DC-DC 컨버터)

  • Park, J.M.;Park, Y.J.;Suh, K.Y.;Mun, S.P.;Kim, Y.M.
    • Proceedings of the KIEE Conference
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    • 2003.07e
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    • pp.158-161
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    • 2003
  • A new soft switching technique that improves performance of the high power factor boost rectifier by reducing switching losses is introduced. The losses are reduced by air active snubber which consists of an inductor, a capacitor a rectifier, and an auxiliary switch. Since the boost switch turns off with zero current, this technique is well suited for implementations with insulated gate bipolar transistors. The reverse recovery related losses of the rectifier are also reduced by the snubber inductor which is connected in series with the boost switch and the boost rectifier. In addition, the auxiliary switch operates with zero voltage switching. A complete design procedure and extensive performance evaluation of the proposed active snubber using a 1.2[kW] high power factor boost rectifier operating from a $90[V_{rms}]$ input are also presented.

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A Study on the Iron Losses in Flux-Switching Permanent Magnet Machines

  • Shin, Heung-Kyo
    • Journal of Electrical Engineering and Technology
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    • v.13 no.2
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    • pp.699-703
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    • 2018
  • Flux-switching permanent magnet machines (FSPMM) have doubly-salient and simple structures making it cost effective and suitable for mass production. In addition, it is possible to increase the rotor rotating speed and concentrate the flux of the permanent magnet on the air-gap. Due to these merits, the FSPMM can be applied to the various industry applications. To improve the performance, various design variables need to be studied in terms of design techniques. In this paper, we especially concentrate on the distribution of iron losses using a two-dimensional finite-element method (2D FEM). As a result, we can get an information for high efficiency FSPMM design.

PWM Inverter For Reducing Switching Loss (스위칭 손실 저감을 위한 이단 PWM 인버터)

  • Choi, Bong-Joo;Jeong, Jin-Beom;Kim, Hee-Jun;Baek, Soo-Hyun;Lee, Ju;Ahn, Kang-Soon
    • Proceedings of the KIEE Conference
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    • 2004.10a
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    • pp.207-209
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    • 2004
  • The conventional pulse width modulation dc to at inverters have a defect that all power devices are switched at high switching frequency. Therefore switching losses are significant. This paper proposed a dual-stage inverter that full bridge switches are operating at low output frequency while a high switching frequency are performed by a pre-inverter switch. The proposed inverter is shown to have small switching losses. Simulation and experiments are performed for verification.

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A study on the ZVT method of high frequency DC-DC converter (ZVT방식 고주파 DC-DC 콘버어터 개발에 관한 연구)

  • Kye, Moo-Ho;Joe, Kee-Yeon;Hong, Sung-Chul;Kim, Sung-Chul
    • Proceedings of the KIEE Conference
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    • 1994.07a
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    • pp.345-347
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    • 1994
  • It is importent to have the switching frequency of power supplies increase in order to reduce their size and weight. But according to increasing the switching frequency, there are several defacts - that is switching losses, high voltage/current stresses and conduction losses and so on. That's why soft switching method was proposed. This paper presents the simulation and analysis of the new proposed Full bridge Zero-Voltage-Transition PWM DC-DC converter for developing that unit. This circuit doesen't increase the voltage and current stresses of main MOSFET switches. Voltage type quasi-resorent method is applied and expected high effenciency. Switching frequency is 100KHz and main switches are MOSFET.

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A ZCT PWM Boost Converter using parallel MOSFET switch (병렬 MOSFET 스위치를 이용한 ZCT PWM Boost Converter)

  • Kim Tea-Woo;Hur Do-Gil;Kim Hack-Sung
    • Proceedings of the KIPE Conference
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    • 2002.07a
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    • pp.759-762
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    • 2002
  • A ZCT(Zero Current Transition) PWM(Pulse-Width-Modulation) boost converter using parallel MOSFET switch is proposed in this paper. The IGBT(main switch) of the proposed converter is always turned on with zero current switching and turned off with zero current/zero voltage switching. The MOSFET(auxiliary switch) is also operates with soft switching condition. In addtion to, the proposed converter eliminates the reverse recovery current of the freewheeling diode by adding the resonant inductor, Lr, in series with the main switch. Therefore, the turn on/turn off switching losses of switches are minimized and the conduction losses by using IGBT switch are reduced. In addition to, using parallel MOSFET switch overcomes the switching frequency limitation occurred by current tail. As mentioned above, the characteristics are verified through experimental results.

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Conducted Noise Reduction in Active clamp ZVS flyback converter using Random Pulse Width Modulation (RPWM 기법을 이용한 능동클램프 ZVS 플라이백 컨버터 전도노이즈저감)

  • Kim Young-Gyu;Choi Tae-Young;Won Chung-Yuen;Kim Jae-Moon;Kim Gyu-Sik;Choi Se-Wan
    • Proceedings of the KIPE Conference
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    • 2002.07a
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    • pp.498-501
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    • 2002
  • In the conventional PWM converter, high-frequency switching techniques was used for high-density of energy, but occurred a lot of problems such as switching losses, switching voltage/current stresses, EMI(Electromgnetic Interference) and so on. To overcome these problems, various soft switching techniques have been presented. However these techniques are focused on reducing switching losses and voltage/current stresses . The simulation and experimental results are shown that the active clamp ZVS flyback converter with the proposed RPWM(Random Pulse Width Modulation) technique reduces the conducted noise.

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Three-Level SEPIC with Improved Efficiency and Balanced Capacitor Voltages

  • Choi, Woo-Young;Lee, Seung-Jae
    • Journal of Power Electronics
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    • v.16 no.2
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    • pp.447-454
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    • 2016
  • A single-ended primary-inductor converter (SEPIC) features low input current ripple and output voltage up/down capability. However, the switching devices in a two-level SEPIC suffer from high voltage stresses and switching losses. To cope with this drawback, this study proposes a three-level SEPIC that uses a low voltage-rated switch and thus achieves better switching performance compared with the two-level SEPIC. The three-level SEPIC can reduce switch voltage stresses and switching losses. The converter operation and control method are described in this work. The experimental results for a 500 W prototype converter are also discussed. Experimental results show that unlike the two-level SEPIC, the three-level SEPIC achieves improved power efficiency with balanced capacitor voltages.

A Study on Loss Analysis of ZVT-PWM Boost Converter using Quasi-Resonant Technique (유사공진 기술을 이용한 ZVT-PWM Boost 컨버터의 손실분석에 관한 연구)

  • 김정래;박경수;성원기;김춘삼
    • Journal of the Korean Institute of Illuminating and Electrical Installation Engineers
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    • v.15 no.1
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    • pp.51-58
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    • 2001
  • Recently, DC-DC converters significantly increase the total losses as rising switching frequency. Trnditional soft switching technique for reducing switching losses even increase voltage/Clment stress of switch In this paper, Resonant circuit for soft switching is connected in parallel with power stage and only operates just before tum-on of the main sWItch. Therefore, ills doesn't affect the total circuit QI'||'&'||'pound;ration. The object of tIns paper is to make the linearized equivalent loss mxleIs. and to analyze the total losses by experiment. ZVT-PWlvI converter designed with 170-260[V] input, 400[V] 5[A] output, and 100[kHz] switching frequency is tested respectively with 500[W], 1[kW], 1.5[kW], and 2[kW] loads. The total losses in input 220[V], 2[kW] load are analyzed by usirm the linearized equivalent loss models.

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