• Title/Summary/Keyword: Bi-directional DC-DC Converter

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Mode Transfer Sequence and Control of Single-phase UPS System (단상 UPS 시스템의 모드 절환 시퀀스 및 제어)

  • Lee, Sang-Suk;Lee, Soon-Ryung;Choi, Bong-Yeon;Lee, Jung-Hyo;Won, Chung-Yuen
    • Journal of the Korean Institute of Illuminating and Electrical Installation Engineers
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    • v.28 no.12
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    • pp.108-115
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    • 2014
  • Recently, Uninterruptible power supply(UPS) is spotlighted from concern about black out, due to reserve power problem caused by increased power consumption. When fault occurs on the grid, UPS system supplies power to loads instead of the grid. Also, it is an advantage of possible operation as Energy storage system(ESS). Bi-directional power control of AC/DC Pulse width modulation(PWM) converter is essential for grid-connected UPS system. And, mode transfer control has to be performed considering phase and dynamic characteristic under grid condition. In this paper, control of mode transfer and bi-directional power control of AC/DC PWM converter is proposed for UPS system. Also, it is verified by simulation and experimental results.

Battery Discharge System Configuration using Photovoltaic Simulator and PCS (태양광 시뮬레이터와 PCS를 이용한 배터리 방전시스템 구성)

  • Jeong, Da-Woom;Park, Sung-Min;Park, Seong-Mi;Park, Sung-Jun;Moon, Seung-Pil
    • Journal of the Korean Society of Industry Convergence
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    • v.23 no.3
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    • pp.491-498
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    • 2020
  • Recently, In the production line of batteries, charge and discharge tests are essential to verify battery characteristics. In this case, the battery charging uses a unidirectional AC/DC converter capable of output voltage and current control, and the discharge uses a resistive load. Since this method consumes energy during discharge, it must be replaced with a bi-directional AC/DC converter system capable of charging and discharging. Although it is difficult to replace the connected inverter part of the bi-directional AC/DC converter system due to the high cost, the spread of the solar-connected inverter rapidly increases as the current solar supply business is activated, and thereby the solar-connected type Inverter prices are plunging. If it can be used as a power converter for battery discharge without program modification of the solar-powered inverter, it will have competition. In this paper, propose a new battery discharge system using a combination of a photovoltaic DC/DC simulator and photovoltaic PCS using a battery to be used as a power converter for battery discharge without program modification of a low-cost photovoltaic inverter. In addition, propose an optimal solar characteristic curve for the stable operation of PCS. The validity of the proposed system was verified using a 500[W] class solar DC/DC simulator and a solar PCS prototype.

Bidirectional Charging/Discharging Digital Control System for Eco-friendly Capacitor Energy Storage Device Implemented by TMS320F28335 chip (TMS320F28335로 구현한 친환경 커패시터 전력저장장치의 양방향 디지털 제어 충/방전 시스템)

  • Lee, Jung-Im;Lee, Jong-Hyun;Jung, An-Yoel;Lee, Choon-Ho;Park, Joung-Hu;Jeon, Hee-Jong
    • The Transactions of the Korean Institute of Power Electronics
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    • v.15 no.3
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    • pp.188-198
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    • 2010
  • Recently, as the demand of the environmental-friendly energy storage system such as an electric double-layer condenser increases, that of the bidirectional charger/discharger for the systems also increases. However, when charging/discharging mode-change occurs, the charger/discharger employing a bi-directional DC-DC converter with a commercialized analog controller has a complex circuit scheme, and a poor transient response. On the other hand, if a single digital controller is used for the bi-directional mode, the system performances can be improved by application of an advanced power-processing algorithm. In the paper, an environmental-friendly power storage systems including an Electric Double Layer Capacitor(EDLC) banks were developed with a bi-directional buck-boost converter and a digital signal processor (TMS320F28335). A simulation test-bed was realized and tested by MATLAB Simulink, and the hardware experiment was performed which shows that the dynamic response was improved such as the simulation results.

A Study of Circuit Characteristic of Bi-Directional DC-DC Converter (자동차용 양방향 DC-DC 컨버터의 회로특성에 관한 연구)

  • Kim, Min-Jo;Jeong, Jin-Beom;Kim, Hee-Jun;Lee, Baek-Haeng
    • Proceedings of the KIEE Conference
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    • 2006.07b
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    • pp.952-953
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    • 2006
  • As car industry takes the DMB, geographical feature information and Internet service recently, the need of an electricity energy is the trend to increase. But existing 12V car electricity system is difficult to be satisfied rapidly increasing electricity need. A relation component company is adding the spur at a high electricity system development. In this paper we accomplished the hi-directional DC-DC Converter for high electricity system composed 42V configuration device. Through a simulation experiment, We looked into the control method and the operation characteristic of the circuit, We accomplished the comparison analysis for fit topoloy selection.

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Design and Implementation of 1.8kW bi-directional LDC with Parallel Control Strategy for Mild Hybrid Electric Vehicles (병렬제어기법이 적용된 1.8kW급 마일드 하이브리드 양방향 LDC 설계 및 구현)

  • Kim, Hyun-Bin;Jeong, Jea-Woong;Bae, Sungwoo;Kim, Jong-Soo
    • The Transactions of the Korean Institute of Power Electronics
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    • v.22 no.1
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    • pp.75-81
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    • 2017
  • This paper presents a design and parallel control strategy of 1.8 kW low-voltage DC-DC converter (LDC) for mild hybrid electric vehicles to improve their power density, system efficiency, and operation stability. Topology and control scheme are important on the LDC for mild hybrid electric vehicles to achieve high system efficiency and power density because of their very low voltage and large current in input and output terminals. Therefore, the optimal topological structure and control algorithm are examined, and a detailed design methodology for the power and control stages is presented. A working sample of 1.8 kW LDC is designed and implemented by applying the adopted topology and control strategy. Experimental results indicate 92.45% of the maximum efficiency and 560 W/l of power density.

A New ZVS Bi-directional CUK DC/DC Converter for a Car Dual Power Supply System (자동차 이중전원 시스템을 위한 새로운 ZVS 양방향 CUK DC/DC 컨버터)

  • Lee S. R.;Lee S. W.;Ko S. H.;Mun J. M.
    • Proceedings of the KIPE Conference
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    • 2004.07a
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    • pp.355-358
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    • 2004
  • Currently, to overcome the limit of a 14V power supply system and to enhance the stability of this system high and to make the fuel efficiency better, a research development of a 42V power supply system is actively the progress. As an intermediate step to change into an unity power supply system, a 42V/14V dual power supply system uses a DC/DC Converter as one of structure elements. Considering the main electric power sources in the next generation of the car is a 42V system a 14V power supply system has advantages as follows : In be managed efficiently and to increase the redundancy at start, to jump start with any vehicles, etc. We need the introduction of a hi-directional converter that can flow the energy each other in a dual 42V-l2V system. This paper proposed the ZVS hi-directional CUK DC/DC converter which decrease the weight with the size of the DC/DC Converter and minimize the loss when the switching happen. In this paper, a circuit design method and an action principle of the circuit was proposed. To verify the proposed circuit, a comprehensive evaluation with theoretical analysis, simulation results is presented.

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Design of a 49kW high efficiency bidirectional DC-DC converter for charge and discharge of high voltage battery in HEV (하이브리드 자동차 고전압 배터리 충, 방전을 위한 49kW급 고효율 양방향 DC/DC 컨버터 설계)

  • Yang, Jin-Young;Yoon, Chang-Woo;Park, Sung-Sik;Choi, Se-Wan;Park, Rae-Kwan;Chang, Seo-Geon
    • Proceedings of the KIPE Conference
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    • 2007.11a
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    • pp.21-23
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    • 2007
  • In this paper a high efficiency bi-directional DC-DC converter for hybrid vehicles is proposed. The proposed converter a three-phase half-bridge interleaved ZVS converter, is designed to have high efficiency in the main operation range. The component ratings are calculated, the actual devices are selected, and the efficiency analysis has been performed to determine optimal ZVS range. The input and output current ripples are significantly reduced due to the interleaved operation. The dual loop control for the interleaved three-phase converter is also presented. To confirm the proposed convert ter, The simulation and experimental results are presented.

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Bi-directional Dual Active Bridge Converter applying variable switching frequency for low battery charger (스위칭 주파수 가변 방식을 적용한 저전압 배터리 충전용 Dual Active Bridge 컨버터)

  • Jeong, Dong-Keun;Kim, Ho-Sung;Ryu, Myung-Hyo;Baek, Ju-Won;Kim, Hee-Je
    • Proceedings of the KIPE Conference
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    • 2014.07a
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    • pp.413-414
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    • 2014
  • This paper proposed an optimized design of a dual active bridge converter for a low-voltage charger. The dual active bridge converter among various bi-directional DC/DC converters is a high-efficiency isolated bi-directional converter. In the general design, when the battery voltage is high, the ZVS region is reduced. In contrast, when the battery voltage is low, the efficiency is low due to high conduction loss. In order to increase the ZVS region and the power conversion efficiency, depending on the battery voltage, variable switching frequency method is applied. At the same duty, the same power is obtained regardless of the battery voltage using the variable switching frequency method. The proposed method was applied to a 5kW prototype converter, and the experimental results were analyzed and verified.

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A Design Method of Transformer Turns Ratio with the Loss Components Analysis of an Isolated Bidirectional DC-DC Converter (절연형 양방향 DC-DC 컨버터의 손실 성분 분석을 통한 변압기 권선비 설계 방법)

  • Jung, Jae-Hun;Kim, Hak-Soo;Nho, Eui-Cheol;Kim, Heung-Geun;Chun, Tae-Won
    • The Transactions of the Korean Institute of Power Electronics
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    • v.21 no.5
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    • pp.434-441
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    • 2016
  • This paper deals with transformer turns ratio design with the consideration of loss minimization in isolated bidirectional DC-DC converter. Generally, the rms value of current, magnitude of current at switching instance, and duty ratio of a converter vary according to the turns ratio of an isolation transformer in the converter under the same voltages and output power level. Therefore, the transformer turns ratio has an effect on the total loss in a converter. The switching and conduction losses of IGBTs and MOSFETs consisting of dual-active bridge converter are analyzed, and iron and copper losses in an isolation transformer and inductor are calculated. Total losses are calculated and measured in cases of four different transformer turns ratios through simulation and experiment with 3-kW converter, and an optimum turns ratio that provides minimum losses is found. The usefulness of the proposed transformer turns ratio design approach is verified through simulation and experimental results.

Development of a Bidirectional DC/DC Converter with Smooth Transition Between Different Operation Modes (방향 절환이 자유로운 양방향 DC/DC 컨버터 개발)

  • Yoo, Chang-Gyu;Lee, Woo-Cheol
    • The Transactions of the Korean Institute of Electrical Engineers B
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    • v.55 no.4
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    • pp.224-230
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    • 2006
  • The conventional way to implement a bidirectional converter with boost/buck has been to use two general purpose PWM ICs with a single supply voltage. In this case, when one direction mode is in operation, the other is disabled and the output of the error amplifier of the disabled IC may be saturated to a maximum value or zero. Therefore, during mode transition, a circuit which can disable the switching operation for a certain time interval is required making it impossible to get a seamless transition. In this paper, the limitations of the conventional 42V/14V bi-directional DC/DC converter implemented with general current mode PWM ICs with a single supply voltage are reviewed and a new current mode PWM controller circuit with a dual voltage system is proposed. The validity of the proposed circuit is investigated through simulation. and experiments.