• Title/Summary/Keyword: switching power loss

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The Study on the ZVS Half-Bridge Converter (영전압 스위칭 하프브리지 컨버터에 관한 연구)

  • Go, S.M.;Kim, Y.;Baek, S.H.;Yoon, S.H.
    • Proceedings of the KIEE Conference
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    • 1998.11a
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    • pp.150-152
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    • 1998
  • ZVS Half-Bridge converter is proposed. This converter is operating in fixed switching frequency to regulate output voltage. The ZVS is maintained by Partial resonance during the OFF interval of both switches. Using self-driven synchronous rectifier, this circuit minimizes the Power loss in the rectification circuit. 50[W] ZVS Half-Bridge converter is simulated and built. Two results has been compared.

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Loss Analysis of According to Switching-Frequency for Boost Converter Topology (부스트 컨버터 토폴로지의 스위칭 주파수에 따른 손실 분석)

  • Kim, Dong-Hee;Choe, Gyu-Yeong;Lee, Byoung-Kuk;Lee, Tae-Won
    • Proceedings of the KIPE Conference
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    • 2010.11a
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    • pp.171-172
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    • 2010
  • 본 논문에서는 부스트 컨버터 토폴로지의 하드스위칭 기법과 소포트스위칭 기법의 주파수에 따른 손실을 분석한다. 이에 따라 스위칭 주파수에 따른 최소의 손실이 발생하는 토폴로지를 도출한다. 각각의 손실 분석은 실제 소자의 파라메터를 동일하게 적용하여 이론적으로 분석 한다.

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Zero-Voltage-Transition PWM Single-Phase Rectifier with Reduced Conduction Loss and Unity Power Factor (고역율 및 저도통손을 갖는 ZVT PWM 단상 정류기)

  • Choi, S.H.;Lee, B.C.;Paeng, S.H.;Kim, I.D.;Nho, E.C.
    • Proceedings of the KIPE Conference
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    • 2005.07a
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    • pp.546-548
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    • 2005
  • This paper proposes a unity power factor ZVT PWM single-phase rectifier. The ZVT soft switching are achieved by using a simple ZVT circuit, and the reduced conduction losses are achieved by employing a single-stage converter, instead of a typical double-stage converter composed of front end diode rectifier and cascaded boost rectifier. Furthermore, thanks to good features such as simple PWM control at constant frequency, low switch stress and low VAR rating of commutation circuits, it is suitable for high power applications. The principle of operation is explained in detail, and simulation results of the new converter are also included.

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Four Switch Three-Phase Z-Source Active Power Filter (Four-Switch 3상 Z-소스 능동전력필터)

  • Qiu, Xiao-Dong;Jung, Young-Gook;Lim, Young-Cheol
    • Proceedings of the KIPE Conference
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    • 2013.07a
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    • pp.224-225
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    • 2013
  • This paper describes the four switch three-phase Z-source active power filter. This novel configuration has many advantages like reduction of cost, switching loss and smaller drive circuit. The paper presents an application of direct current control(DCC) method in a three-phase parallel Z-source active power filter to reduce the harmonics generated by the nonlinear load. The compensation principles and dynamics of the system are discussed in detail. The results show that the proposed control strategy is feasible and efficient.

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Magnetic Coupled ZVT PWM Boost PFC Pre-regulator (에너지 회생 변압기를 사용한 영전압 과도상태(ZVT) 부스트 역률보상 회로)

  • Yang Joon-Hyun;Lee Dong-Young;Cho Bo-Hyung
    • Proceedings of the KIPE Conference
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    • 2001.07a
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    • pp.548-551
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    • 2001
  • A zero-voltage transition (ZVT) PWM boost PFC converter using a transformer to recover the resonant energy into the input voltage is proposed. The proposed converter reduces turn-off switching loss of the auxiliary switch. The resonant current of the auxiliary circuit is optimally reduced by the feed-forwarded input voltage. Moreover, the resonant energy of the auxiliary circuit is recovered into the load and input voltages. In this paper, the modes of converter operation are explained and analyzed, design guidelines are given, and experimental results of 1.2kW, 200kHz prototype system are presented.

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Battery Energy Storage System with Novel High Efficiency Topology (배터리 에너지 저장 시스템을 위한 새로운 고효율 토폴로지)

  • Lee, Il-Ho;Kim, Kyu-Dong;Lee, Yong-Suk;Kim, Jun-Gu;Won, Chung-Yuen
    • Proceedings of the KIPE Conference
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    • 2012.07a
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    • pp.431-432
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    • 2012
  • The proposed dc-dc convertor for a battery energy storage system(BESS) can reduce the power rating and bidirectional power flow. This system consist soft-switching bidirectional dc-dc converter so it can reduce the energy loss when charging and discharging mode. Thus it can achieve high efficiency. Also, overall system utilizes the voltage compensation circuit. It is composed of small size and low cost due to reducing the power rating. In this paper, we proposed system about verified by simulation.

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Charging Control of Wireless Charging System (무선충전시스템의 충전 제어 방식)

  • Shin, Han-Ho;Heo, Joon;Jeon, Seong-Jeub
    • The Transactions of the Korean Institute of Power Electronics
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    • v.24 no.4
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    • pp.303-309
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    • 2019
  • A hybrid control of a rectifier/regulator of wireless power transfer systems for electric vehicles is studied. A combined rectifier/regulator is used for charging control. The hybrid control comprises integral cycle control and pulse width modulation control to cope with the variations in the induced voltage due to clearance and alignment. The hybrid control has good control capability and does not cause severe switching loss. A 22 kW prototype of the Wireless Power Transfer class 4 charging system defined by the Society of Automotive Engineers is constructed and tested to verify the proposal.

Single phase induction motor driving system using auxiliary resonant DC-DC converter (보조 공진 DC-DC컨버터를 이용한 단상 유도 전동기 구동 시스템)

  • Lee, S.H.;Mun, S.P.;Kwon, S.K.;Lee, H.W.;Suh, K.Y.
    • Proceedings of the KIEE Conference
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    • 2002.07b
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    • pp.1190-1192
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    • 2002
  • These days, electromagnetic radiation noise and switching losses of static converter become harmful. Many resonant inverters with radiation techniques solve their such problems. Auxiliary Resonant Commutated Pole Inverter (ARCP) was proposed. but it has two demerits. In circuit configuration. It isn't constructed by 2 in 1 IGET modules. Besides, control is complicated because of neutral point voltage control and boost current control. This paper proposes a new auxiliary resonant inverter which solved two demerits. In addition, it deals efficiency which compared with hard switching inverter and result of separation of power loss

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Loss Comparison of Half and Full Bridge Converter according to Switching Methods (하프 및 풀 브리지 컨버터의 스위칭 방법에 따른 손실비교)

  • Ko, Eu-Sock;Lee, Dong-Hyun;Lee, Sang-Ri;Kim, Hag-Wone;Cho, Kwan-Yuhl
    • Proceedings of the KIPE Conference
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    • 2013.11a
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    • pp.99-100
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    • 2013
  • 기존 용접 컨버터는 풀 브릿지 컨버터는 하드스위칭을 하게 되는데, 이는 스위칭 소자로 사용되는 IGBT의 턴 오프 손실을 증가시키는 단점을 가지고 있다. 본 논문에서는 스위치의 손실을 줄이고자 기존의 풀 브릿지 컨버터에 ZVS(zero voltage switching) 턴 오프 방식를 적용한 회로와 하드 스위칭 방법에 대하여 손실을 PSIM 모의해석을 통하여 비교 분석하였다.

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Loop Current Calculation based on Voltage Angle Difference at Tie Switch for Switching Plan Validation in Distribution System Operation (상시개방점 양단전압 측정값을 이용한 배전선로 루프운전 가능 여부 판단 방법)

  • Son, Juhwan;Lim, Seongil
    • Journal of the Korean Institute of Illuminating and Electrical Installation Engineers
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    • v.29 no.7
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    • pp.14-21
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    • 2015
  • Distribution systems are operated in radial structure, but temporal loop structure could be founded the live load transfer. Main purposes of reconfiguration of distribution network are load balancing, loss minimization and voltage drop maintaining. In the loop structure, huge loop current can be flowed between two substations in case of large voltage angle difference. Protection devices of distribution line can be triped by this huge loop current. So, precise calculation of loop current is very important for secure switching. This paper proposes a novel calculation method of loop current using the voltage angle differences measured at the tie switches. Feasibility of the propose method has been verified by various case studies based on Matlab simulation.