• Title/Summary/Keyword: Single switch boost converter

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A New Solar Energy Conversion System Implemented using Single Phase Inverter (새로운 방식의 단상 인버터를 이용한 태양광 시스템 구현)

  • Hong Jeng-Pyo;Kim Tae-Hwa;Won Tae-Hyun;Kwon Soon-Jae;Hong Soon-Ill;Kim Jong-Dal
    • Proceedings of the KIPE Conference
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    • 2006.06a
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    • pp.488-491
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    • 2006
  • In this paper proposed method of maximum power point tracking using boost converter for a connected single phase inverter with photovoltaic system. The maximum power point tracking control is based on generated circuit control MOSFET switch of boost converter and single phase inverter uses predicted current control to control four IGBT's switch in full bridge. The predicted current control provide current with sinusoidal wave shape and inphase with voltage. The generation control circuit allows each photovoltaic module to operate independently at peak capacity, simply by detecting of the output power of the system. Furthermore, the generation control circuit attenuates low-frequency ripple voltage, which is caused by the full-bridge inverter, across the photovoltaic modules. Consequently, the output power of system is increased due to the increase in average power generated by the photovoltaic modules. The effectiveness of the proposed inverter system is confirmed experimentally and by means of simulation.

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A study on the characteristics of power factor correction circuits with input active boost converter (입력 능동 부스트 컨버터를 고려한 역률개선회로의 특성분석)

  • Jang, Jun-Young;Lee, Kwan-Yong;Kim, Cherl-Jin
    • Proceedings of the KIEE Conference
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    • 2003.04a
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    • pp.270-272
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    • 2003
  • Switching power supplies are widely used in many industrial fields. Power factor correction(PFC) circuits have tendency to be applied in new power supply designs. The input active power factor correction(APFC) circuits can be implemented using either the two-stage approach or the single-stage approach. The single-stage PFC circuit has advantage to reduce the number of components by eliminating a need for the PFC switch and control circuit. However, unlike in the two-stage approach, the do voltage on the energy storage capacitor in a single-stage PFC circuit is not well regulated. As a result. in universal line application($90{\sim}265Vac$), the storage capacitor voltage varies with the load and line variation. In this paper, the performance of output voltage regulation and transient response are clarified here. The validity of designed boost PFC circuit is confirmed by MATLAB simulation and experimental results of 2 [kW] prototype converter.

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A Multi-Load Shoring Characteristic Using Novel Buck-Boost Chopper Circuit (새로운 승·강압 초퍼 회로를 이용한 부하 다분할 특성)

  • Suh, Ki-Young;Mun, Sang-Pil;Kwon, Soon-Kurl;Lee, Hyun-Woo;Jung, Sang-Hwa
    • Journal of the Korean Institute of Illuminating and Electrical Installation Engineers
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    • v.19 no.2
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    • pp.42-48
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    • 2005
  • A DC-DC converter is being widely used for various household appliances and for industry applications. The DC-CC converter is powered from single battery, and the voltage is varied according to the purpose. In the vehicle, various accessories whose electric power is different are being un4 Thus, plural number of DC-DC converter should be provided, so these situations bring complicated circuits, and accordingly, higher cost. Under such backgrounds, in this paper, we propose a novel buck-boost chopper circuit with simply configuration which can supply to two or more different output loads. The propose chewer circuit can control output voltages by controlling duty ratio by using typically two switching devices, which is composed by single boost-switch and single buck-switch. The output voltage can be controlled widely. A few modified circuits developed from the fundamental circuit are represented including the general multi-load circuit. And all this merits and appropriateness was proved by computer simulation and experience.

A Simple ZVT PWM Single-Phase Rectifier with Reduced Conduction Loss and Unity Power Factor

  • Kim, In-Dong;Choi, Seong-Hun;Nho, Eui-Cheol;Ahn, Jin-Woo
    • Journal of Power Electronics
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    • v.7 no.1
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    • pp.55-63
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    • 2007
  • This paper proposes a simple unity power factor zero-voltage-transition (ZVT) pulse-width-modulated (PWM) single-phase rectifier, which features reduced switching and conduction losses. The switching loss reduction is achieved by a simple auxiliary commutation circuit, and the conduction loss reduction is achieved by employing a single-stage converter, rather than a typical double-stage converter comprising of a front-end rectifier and a boost rectifier. Furthermore, thanks to good features such as a simple PWM control at constant frequency, low switch stress, low Var rating of commutation circuits, and simple power circuit structure, it is suitable for high power applications. The principles of operation are explained in detail, and a major characteristics analysis and the experimental results of the new converter are also included in this paper.

A Single Inductor Dual Output Synchronous High Speed DC-DC Boost Converter using Type-III Compensation for Low Power Applications

  • Hayder, Abbas Syed;Park, Hyun-Gu;Kim, Hongin;Lee, Dong-Soo;Abbasizadeh, Hamed;Lee, Kang-Yoon
    • IEIE Transactions on Smart Processing and Computing
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    • v.4 no.1
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    • pp.44-50
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    • 2015
  • This paper presents a high speed synchronous single inductor dual output boost converter using Type-III compensation for power management in smart devices. Maintaining multiple outputs from a single inductor is becoming very important because of inductor the sizes. The uses of high switching frequency, inductor and capacitor sizes are reduced. Owing to synchronous rectification this kind of converter is suitable for SoC. The phase is controlled in time sharing manner for each output. The controller used here is Type-III, which ensures quick settling time and high stability. The outputs are stable within $58{\mu}s$. The simulation results show that the proposed scheme achieves a better overall performance. The input voltage is 1.8V, switching frequency is 5MHz, and the inductor used is 600nH. The output voltages and powers are 2.6V& 3.3V and 147mW &, 230mW respectively.

Single-Stage Single-Phase Integrated ZCS Quasi-Resonant Power Factor Preregulator Based on Forward Topology (단일 전력단 단상 공진형 영전류 스위칭 역률 개선 회로)

  • 구관본;이준영;윤명중
    • Proceedings of the KIPE Conference
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    • 1999.07a
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    • pp.639-642
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    • 1999
  • An integrated zero current switching(ZCS) quasi-resonant converter(QRC) for power factor correction and high efficiency with single switch is proposed in this thesis. Boost integrated circuit operating discontinuous conduction mode(DCM) and QRC are used for power factor correction and reducing switching loss, respectively. A prototype converter has been designed and experimented. At rated condition, the THD in the input current waveform of this prototype has approximately 18%. The efficiency is obtained about 70%, the power factor is about 0.985 as well. Therefore, the proposed converter is suitable for a low power level converter with operating switching frequency above several hundred KHz.

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Power Factor Correction of the Single-State AC/DC Converter with Low conduction Loss and High Efficiency

  • Ryu, Myung-Hyo;Choi, Byungcho;Kim, Heung-Geun;Cha, Young-Kil
    • Proceedings of the KIPE Conference
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    • 1998.10a
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    • pp.281-286
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    • 1998
  • This paper proposes a new single-stage, single-switch AC/DC converter based on the boost power factor correction (PFC) cell. The converter offers both high power factor and high efficiency. To reduce the dc voltage on the energy storage capacitor, the dc bus voltage feedback method was used. A 100W (5V/20A) prototype was built and tested to show the validity of the proposed converter.

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A study on the Conducted Noise Reduction in Three-Phase Boost Converter using Random Pulse Width Modulation (Random PWM 기법을 이용한 3상 승압형 컨버터 전도노이즈 저감에 관한 연구)

  • Jung, Dong-Hyo
    • The Transactions of the Korean Institute of Electrical Engineers P
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    • v.51 no.3
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    • pp.120-125
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    • 2002
  • The switching-mode power converter has been widely used because of its features of high efficiency and small weight and size. These features are brought by the ON-OFF operation of semiconductor switching devices. However, this switching operation causes the surge and EMI(Electromagnetic Interference) which deteriorate the reliability of the converter themselves and entire electronic systems. This problem on the surge and noise is one of the most serious difficulties in AC-to-DC converter. In the switching-mode power converter, the output voltage is generally controlled by varying the duty ratio of main switch. When a converter operates in steady state, duty ratio of the converter is kept constant. So the power of switching noise is concentrated in specific frequencies. Generally, to reduce the EMI and improve the immunity of converter system, the switching frequency of converter needs to be properly modulated during a rectified line period instead of being kept constant. Random Pulse Width Modulation (RPWM) is performed by adding a random perturbation to switching instant while output-voltage regulation of converter is performed. RPWM method for reducing conducted EMI in single switch three phase discontinuous conduction mode boost converter is presented. The more white noise is injected, the more conducted EMI is reduced. But output-voltage is not sufficiently regulated. This is the reason why carrier frequency selection topology is proposed. In the case of carrier frequency selection, output-voltage of steady state and transient state is fully regulated. A RPWM control method was proposed in order to smooth the switching noise spectrum and reduce it's level. Experimental results are verified by converter operating at 300V/1kW with 5%~30% white noise input. Spectrum analysis is performed on the Phase current and the CM noise voltage. The former is measured with Current Probe and the latter is achieved with LISN, which are connected to the spectrum analyzer respectively.

The Study on Auxiliary Power Unit for Railroad Car (철도차량용 보조전원장치에 관한 연구)

  • Choi, Yeon-Woo;Lee, Byoung-Hee
    • Proceedings of the KIPE Conference
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    • 2016.07a
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    • pp.69-70
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    • 2016
  • 본 논문에서는 공진형 DC/DC Converter와 Single-Switch Boost Converter 구조를 적용한 철도차량용 보조전원장치를 제안한다. 제안하는 회로는 기존 대비 반도체 소자의 개수 저감 및 반도체 소자의 전압 스트레스를 해당 회로부 입력전압의 1/2 이하로 저감 가능하여 낮은 내압의 반도체 소자를 적용할 수 있다. 150kW급 철도차량용 보조전원장치 회로를 컴퓨터 기반 시뮬레이션을 통해 검증하였다.

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ZVS-PWM Boost Chopper-Fed DC-DC Converter with Load-Side Auxiliary Edge Resonant Snubber and Its Performance Evaluations

  • Ogura, Koki;Chandhaket, Srawouth;Ahmed, Tarek;Nakaoka, Mutsuo
    • Journal of Power Electronics
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    • v.4 no.1
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    • pp.46-55
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    • 2004
  • This paper presents a high-frequency ZVS-PWM boost chopper-fed DC-DC converter with a single active auxiliary edge resonant snubber in the load-side which can be designed for power conditioners such as solar photovoltaic generation, fuel cell generation, battery and super capacitor energy storages. Its principle operation in steady-state is described in addition to a prototype setup. The experimental results of ZVS-PWM boost chopper-fed DC-DC converter proposed here, are evaluated and verified with a practical design model in terms of its switching voltage and current waveforms, the switching v-i trajectory, the temperature performance of IGBT module, the actual power conversion efficiency and the EMI of radiated and conducted emissions. And then discussed and compared with the hard switching scheme from an experimental point of view. Finally, this paper proposes a practical method to suppress parasitic oscillation due to the active auxiliary resonant switch at ZCS turn off mode transition with the aid of an additional lossless clamping diode loop, and reduced the EMI conducted emission in this paper.