• 제목/요약/키워드: Full Bridge converter

검색결과 507건 처리시간 0.028초

동적 전류분담 인덕터를 이용한 ZVT 풀 브리지 컨버터의 병렬 운전 (The Parallel Operation of ZVT-Full Bridge Converter with Dynamic Current Shared Inductor)

  • 김용
    • 조명전기설비학회논문지
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    • 제16권4호
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    • pp.15-21
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    • 2002
  • 본 논문에서는 동적 전류분담 인덕터를 이용한 ZVT 풀 브리지 DC/DC 컨버터의 병렬운전 특성을 해석하였다. 기존의 경우 CT(Current Transformer)를 사용하여 각 단위 컨버터 전류의 크기를 감지하여, 제어회로에서 각 컨버터에 균등한 전류 배분을 하는 방법을 사용하였으나, 본 연구에서는 동적 전류분담 인덕터를 사용함으로써 병렬운전하는 두 대의 풀 브리지 컨버터의 전류분배를 위한 제어회로를 비교적 단순하게 하였다. 동시에 ZVT회로를 이용하여 컨버터의 효율을 향상시켰으며 스위칭소자로서 IGBT를 사용하여 2[㎾]급 시작품을 제작, 50[KHz]에서 실험하였다.

ZVT 풀 브리지 DC/DC 컨버터의 병렬 운전 및 제어기 설계에 관한 연구 (A Study on the Parallel Operation and Control Loop Design of ZVT-Full Bridge DC/DC Converter)

  • 배진용;김용;윤석호;장성원;이규훈
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 2001년도 춘계학술대회 논문집 전기기기 및 에너지변환시스템부문
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    • pp.324-328
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    • 2001
  • This paper presents parallel operation and control loop design of ZVT(Zero Voltage Transition) Full Bridge DC/DC Converter. At parallel operation of ZVT Full Bridge Converter, dynamic current shared inductor devides the same current of unit converter and ZVT circuit and aids to high efficiency in the system. Base on the modeling of ZVT. Full Bridge Converter, the control loop is designed using a simple two-pole, one-zero compensation circuit. To show the validity of the design procedures, the small signal analysis of the closed loop system and open loop system is carried out and the superiority of the dynamic characteristics is verified through the experiment with a 2kW, 50kHz prototype converter.

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전력용 반도체의 전도손실 분석을 통한 Three-Level 컨버터와 Full-Bridge 컨버터의 손실모델 및 특성비교에 관한 연구 (A Study on the loss Model and Characteristic Comparison of Three-Level Converter and Full-Bridge Converter through the Conduction loss Analysis of Power devices)

  • 배진용;김용;권순도;이은영
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 2004년도 춘계학술대회 논문집 전기기기 및 에너지변환시스템부문
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    • pp.122-125
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    • 2004
  • This paper presents the loss analysis comparison for Three-Level Converter and Full-Bridge converter. The result of the analysis is verified with 2.5kW prototype.

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Three-Level 컨버터와 Full-Bridge 컨버터의 손실분석 비교에 관한 연구 (A Study on the Loss Analysis Comparison for Three-Level Converter and Full-Bridge Converter)

  • 배진용;김용;백수현;김필수;최근수
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 2003년도 하계학술대회 논문집 B
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    • pp.1069-1071
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    • 2003
  • This paper presents the loss analysis comparison for Three-Level Converter and Full-Bridge converter. The result of the analysis is verified with 2.5kW prototype.

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새로운 단일전력단 역률보상 풀브리지 컨버터 (New Single Stage PFC Full Bridge Converter)

  • 임창섭;권순걸;조정구;송두익
    • 대한전기학회논문지:전기기기및에너지변환시스템부문B
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    • 제52권12호
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    • pp.655-660
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    • 2003
  • This paper proposes new single stage power factor correction (PFC) full bridge converter. The proposed converter is combined previous ZVS full bridge DC/DC converter with two inductors, two diodes, two magnetic coupling transformer for PFC. This process of power is isolated from the source and also regulate stable DC output voltage in a category. In this topology, the voltage stress of main switches is reduced by zero voltage switching. Moreover, the proposed converter doesn't need active PFC switch and auxiliarly circuits, like control and gating board, so it could decrease the size and cost and increase the efficiency.

홀드 업 타임 보상회로를 가진 IT 기기용 Front-end PSFB DC/DC 컨버터 (Phase-Shifted Full Bridge(PSFB) DC/DC Converter with a Hold-up Time Compensation Circuit for Information Technology (IT) Devices)

  • 이강현
    • 전력전자학회논문지
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    • 제18권5호
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    • pp.501-506
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    • 2013
  • A hold-up time compensation circuit is proposed to get high efficiency of the front-end phase-shifted full bridge DC/DC converter. The proposed circuit can make the phase-shifted full bridge front-end DC/DC converter built with 0.5 duty ratio so that the conduction loss of the primary side and voltage stress across rectifier in the secondary side are reduced and the higher efficiency can be obtained. Furthermore, the requirement of an output filter significantly can diminish due to the perfect filtered waveform. A 12V/100A prototype has been made and experimental results are given to verify the theoretic analysis and detailed features.

전기자동차용 배터리의 CC/CV 충전을 위한 새로운 듀얼 풀브리지 LLC 공진형 컨버터 (A Novel Dual Full-Bridge LLC Resonant Converter for CC/CV Charge of the Battery for Electric Vehicles)

  • 부하이남;최우진
    • 전력전자학회:학술대회논문집
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    • 전력전자학회 2016년도 전력전자학술대회 논문집
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    • pp.337-338
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    • 2016
  • This paper introduces a novel dual Full-Bridge LLC(FBLLC)resonant converter for CC/CV Charge of the Battery for Electric Vehicles. One full-bridge LLC resonant converter operates with a fixed-resonant network and the other operates with a variable-resonant network for CC and CV mode operations. The proposed converter can achieve ZVS for all the primary switches and exhibits a highefficiency characteristics like aconventional single FBLLC resonant converter. In addition, the variable-resonant network helps minimize the switching-frequency variation. The dual structure makes the proposed converter possible to achieve ZVS and nearly ZCS for all the primary switches in CC mode operation. Since the proposed converter can operate at a fixed frequency in CV mode, it can minimize the circulating current and achieve nearly ZCS. A 6.6 kW prototype converter is implemented to verify the validity of proposed converter and the maximum efficiency of 98.3% was achieved.

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Phase-Shift Triple Full-Bridge ZVZCS Converter with All Soft Switched Devices

  • Zhu, Junjie;Qian, Qinsong;Lu, Shengli;Sun, Weifeng
    • Journal of Power Electronics
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    • 제19권6호
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    • pp.1337-1350
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    • 2019
  • This paper proposes a Phase-Shift Triple Full-Bridge (PSTB) Zero-Voltage Zero-Current-Switching (ZVZCS) converter with a high switching frequency and high efficiency. In the proposed converter, all three bridge legs are shared leading-legs, and all three transformers work in the Discontinuous Conduction Mode (DCM). Thus, all of the switches and diodes in the PSTB ZVZCS can be soft switched. Moreover, since all of the transformers can pass energy from the primary-side to the secondary-side when their primary-side currents are not zero, there is no circulating current. As a result, the PSTB ZVZCS converter can achieve a high efficiency at high operating frequencies. A theoretical analysis and the characteristics of the proposed converter are presented and verified on a 1MHz 200~300V/24V 1.2kW hardware prototype. The proposed converter can reach a peak efficiency of 96.6%.

넓은 입력전압 범위에서 높은 효율을 가지는 위상천이 풀브릿지 컨버터 (A High Efficiency Phase-Shifted Full-Bridge Converter with Wide Input Voltage Range)

  • 한정규;최승현;문건우
    • 전력전자학회논문지
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    • 제24권1호
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    • pp.66-69
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    • 2019
  • This study proposes a high-efficiency phase-shifted full-bridge (PSFB) converter with a wide input voltage range. The conventional PSFB converter is a useful topology in high-power applications. This converter not only achieves the zero-voltage switching of the primary switches, but also has small RMS current in the primary side. However, because the conventional PSFB converter has large freewheeling current in the primary side when it is designed considering the hold-up time of the converter, such a converter has high conduction loss at the primary switches. To solve this problem, a new PSFB converter is proposed in this study. The experiment is implemented with an input voltage ranging from a 320 V-400 V and an output power specification of 715 W.

1차 지연회로를 사용한 ZVS Full-Bridge 컨버터 구동회로 설계 (The Driving Circuit Design for ZVS Full-Bridge Converter with 1st Order Delay Circuit)

  • 조내수;최연호;윤경섭;구본호;권우현
    • 전기학회논문지
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    • 제59권3호
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    • pp.569-574
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    • 2010
  • The full bridge converter have been used for high power system that is needed to switch the big current. So, EMI and stability problem is occurred. The Soft switching method is the solution to solve the above problem, But implementation of soft switching(ZVS: Zero Voltage Switching) is so complicate and expensive because of the DSP MCU and shift circuit. In this paper, we introduce the technical method for driving circuit of ZVS full bridge converter with 1st order delay circuit and logic elements. The realization of this method is so simple and cheap. The effectiveness of the proposed circuit is verified by experimental results.