• Title/Summary/Keyword: Electric Vehicle Battery Charger

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배터리 교환형 전기자동차의 배터리 접속기 내구성 평가에 관한 연구 (A Study of Durability Evaluation for Couplers in Battery Changeable Electric Vehicle)

  • 김광민;윤준보;강병국;이주
    • 조명전기설비학회논문지
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    • 제28권8호
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    • pp.69-74
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    • 2014
  • Recently, many countries are researching and developing the various Electric Vehicle(EV) for reserving their natural environments and so on. But the charging time that is longer than the time of filling up the traditional engine vehicle will be the obstacles of spreading them. So, the other type EV is developed. It is the Battery Changeable EV. But there is not testing method for it. Especially, the defining of the durability evaluation for the couplers between battery and charger is very important because the couplers are changed very frequently. So, they may cause many faults and problems. Therefore, this study shows the definition of the durability procedure and the test is conducted with the equipment.

친환경 자동차용 통합형 전력변환장치의 개발 및 배터리 HILS를 이용한 LDC 검증에 관한 연구 (Development of the Integrated Power Converter for the Environmentally Friendly Vehicle and Validation of the LDC using Battery HILS)

  • 김태훈;송현식;이백행;이찬송;권철순;정도양
    • 전기학회논문지
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    • 제63권9호
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    • pp.1212-1218
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    • 2014
  • For OBC (On-Board Charger) and LDC (Low DC-DC Converter) used as essential power conversion systems of PHEV (Plug-in Hybrid Electric Vehicle), system performance is required as well as reliability, which is need to protect the vehicle and driver from various faults. While current development processor is sufficient for embodying functions and verifying performance in normal state during development of prototypes for OBC and LDC, there is no clear method of verification for various fault situations that occur in abnormal state and for securing stability of vehicle base, unless verification is performed by mounting on an actual vehicle. In this paper, a CCM (Charger Converter Module) was developed as an integrated structure of OBC and LDC. In addition, diverse fault situations that can occur in vehicles are simulated by a simulator to artificially inject into power conversion system and to test whether it operates properly. Also, HILS (Hardware-in-the-Loop Simulation) is carried out to verify whether LDC is operated properly under power environment of an actual vehicle.

슈퍼커패시터를 이용한 전기차량용 회생제동 에너지 저장장치 개발 (Development of Regenerative Energy Storage System for An Electric Vehicle Using Super-Capacitors)

  • 정대원
    • 전기학회논문지
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    • 제60권3호
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    • pp.544-551
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    • 2011
  • This paper presents the circuit arrangement and effective control method of regenerative energy storage system for an electric vehicle using super-capacitors as the braking energy storage element. A bi-directional controlled current flow of the DC-DC converters with the capacitor bank is connected in parallel with battery, and is controlled so that the whole of the braking energy is effectively absorbed into the capacitors and released back to the electric motor upon acceleration. The converter needs the series-parallel switching circuit for making the best use of the series capacitors and for limiting the step-up ratio of the boost converter. The proposed methods are verified by computer simulation and experimental set-up. They are usefully applied to the electric vehicles such as green cars, electric motorcycles, bike, etc which are power- supplied by the electric batteries.

표면 부착형 영구자석 동기 전동기를 이용한 20kW급 실험용 전기자동차 파워트레인 개발 (Development of a Powertrain for 20kW Experimental Electric Vehicle Using Surface Mounted Permanent Magnet Synchronous Motor)

  • 박성환;이정주;손종열;이영일
    • 전력전자학회논문지
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    • 제22권3호
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    • pp.240-248
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    • 2017
  • This paper describes the development of a powertrain for a 20 kW experimental electric vehicle using a surface-mounted permanent magnet synchronous motor (SPMSM) and its application to a test vehicle. Two 10 kW SPMSMs are used in the powertrain, and two-level inverters are developed by using IGBTs to derive these motors. To control the SPMSM, a control board based on a TMS320F28335 DSP module, which has fast arithmetic function and floating point operator, is used. We develop a 100 V/40 A battery pack, which includes $32{\times}4$ LiFePO4 battery cells using commercial BMS. A commercial on-board charger with 220 V (AC) input and 100 V (DC) and 18 A output is used to charge the battery pack. The performance of the developed vehicle, such as acceleration availability, maximum speed, and maximum power, is estimated based on vehicle dynamics and verified through experiments.

전기자동차용 납축전지의 시분할 균등충전기 (Time-sharing Charge System for Equalization of Lead-Acid Battery)

  • 강신영;김광헌;임영철
    • 한국조명전기설비학회지:조명전기설비
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    • 제11권2호
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    • pp.94-101
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    • 1997
  • 본 논문에서는 일정 주기마다 전지의 단자전압을 검출하여 단자전압에 따라 균등충전 시간을 시분할로 제어하여 전지간의 불균등을 해소시키는 균등 충전방식을 제안하였다. 기존의 균등 충전방식과 달리 구조가 간단하고 소형, 경량으로 전지자동차용 탑재형 균등 충전시스템으로 이용이 가능하다. 또한, 원칩 마이크로프로세서를 이용하여 일정 주기마다 단자전압을 검출하여 제어하므로 전지의 과충전을 예방할 수 있고, 따라서 전지 수명 연장에도 효과적이라 할 수 있다.

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Control and Analysis of an Integrated Bidirectional DC/AC and DC/DC Converters for Plug-In Hybrid Electric Vehicle Applications

  • Hegazy, Omar;Van Mierlo, Joeri;Lataire, Philippe
    • Journal of Power Electronics
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    • 제11권4호
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    • pp.408-417
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    • 2011
  • The plug-in hybrid electric vehicles (PHEVs) are specialized hybrid electric vehicles that have the potential to obtain enough energy for average daily commuting from batteries. The PHEV battery would be recharged from the power grid at home or at work and would thus allow for a reduction in the overall fuel consumption. This paper proposes an integrated power electronics interface for PHEVs, which consists of a novel Eight-Switch Inverter (ESI) and an interleaved DC/DC converter, in order to reduce the cost, the mass and the size of the power electronics unit (PEU) with high performance at any operating mode. In the proposed configuration, a novel Eight-Switch Inverter (ESI) is able to function as a bidirectional single-phase AC/DC battery charger/ vehicle to grid (V2G) and to transfer electrical energy between the DC-link (connected to the battery) and the electric traction system as DC/AC inverter. In addition, a bidirectional-interleaved DC/DC converter with dual-loop controller is proposed for interfacing the ESI to a low-voltage battery pack in order to minimize the ripple of the battery current and to improve the efficiency of the DC system with lower inductor size. To validate the performance of the proposed configuration, the indirect field-oriented control (IFOC) based on particle swarm optimization (PSO) is proposed to optimize the efficiency of the AC drive system in PHEVs. The maximum efficiency of the motor is obtained by the evaluation of optimal rotor flux at any operating point, where the PSO is applied to evaluate the optimal flux. Moreover, an improved AC/DC controller based Proportional-Resonant Control (PRC) is proposed in order to reduce the THD of the input current in charger/V2G modes. The proposed configuration is analyzed and its performance is validated using simulated results obtained in MATLAB/ SIMULINK. Furthermore, it is experimentally validated with results obtained from the prototypes that have been developed and built in the laboratory based on TMS320F2808 DSP.

차량 탑재형 배터리 충전기의 인터리브드 부스트 PFC 컨버터 제어시스템 설계 및 구현 (Design and Implementation of a Control System for the Interleaved Boost PFC Converter in On-Board Battery Chargers)

  • 이준혁;정광순;이경중;정재엽;김호경;홍성수;안현식
    • 전기학회논문지
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    • 제65권5호
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    • pp.843-850
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    • 2016
  • In this paper, we propose a digital controller design process for the interleaved type of a boost PFC (Power Factor Correction) converter which can disperse the heat of the switching devices due to the interleaved topology. We establish a mathematical model of a boost PFC converter and propose a controller design method based on the root locus. The performance of the designed controller is verified by simulations. The measurement of the input voltage, inductor currents, and the converter output link voltage are needed for the control of the converter system which consists of a power unit and a control unit where a high-performance 32-bit microcontroller is used. The adjustment of A/D conversion timing is also needed to avoid high frequency noise generated when the switches on/off. It is illustrated by the real experiments that the designed control system with the properly adjusted ADC timing satisfies the given performance specifications of the interleaved boost PFC converter in the on-board slow battery charger.

EV용 충전 인덕터용 PFC 및 제로 토크제어 (PFC and Zero Torque Control of SRM for EV Battery Charging)

  • ;;;이동희;안진우
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 2015년도 제46회 하계학술대회
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    • pp.652-654
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    • 2015
  • Integrated switched reluctance motor drive as an electric vehicle battery charger is presented in this paper. The SRM, which is used as the traction power in the driving mode, is used in the charge circuit to improve the power factor of charging system. The charging circuit can share the power switches of the asymmetric converter and phase windings of SRM to charge the battery, and can reduce the size and cost of the system in the plug-in system. To keep the rotor at standstill, zero torque control method is proposed. Since the inductances of the SRM windings are not same at any stop position, the charger controller controls the reference current to satisfy the total charging current with PFC and zero torque condition. A novel cubic equation method is proposed as a current reference distributor of the charging controller. Simulations are performed by MATLAB software and results satisfy the Effectiveness of proposed battery charging system.

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Isolated PFC Converter Based on an ADAB Structure with Harmonic Modulation for EV Chargers

  • Choi, Seung-Won;Kim, Yoon-Jae;Lee, Il-Oun;Lee, Jun-Young
    • Journal of Power Electronics
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    • 제18권2호
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    • pp.383-394
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    • 2018
  • This paper presents an isolated power factor correction converter for general-purpose electric vehicle chargers with a wide output voltage range. The converter is based on an asymmetrical dual active bridge structure so that the voltage stress of switching devices can be eliminated by transferring the transformer leakage inductance to the circuit parameters. Harmonic and output controls are performed by secondary switches, and primary switches are only operated at a fixed frequency with a 50% duty ratio. A harmonic modulation technique is also adopted to obtain a near-unity power factor without input current monitoring. The feasibility of the proposed charger is verified with a 3.3 kW prototype.

PSFB 컨버터를 이용한 전기자동차용 6.6kW 탑재형 충전기 설계 (Design of 6.6kW On-Board Battery Charger for Electric Vehicle using Phase-Shift Full-Bridge Converter)

  • 안정훈;김윤성;구근완;이병국
    • 전력전자학회:학술대회논문집
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    • 전력전자학회 2012년도 전력전자학술대회 논문집
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    • pp.166-167
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    • 2012
  • 본 논문은 전기자동차 (Electric Vehicles, EVs)용 리튬 이온 (Li-Ion) 배터리의 충전 및 충전 속도 향상을 위하여 6.6kW급 고전력 탑재형 충전기 (On-Board Charger, OBC)를 설계한다. 높은 부하 가변범위와 차량 실장 특성을 고려하여 가용 가능한 토폴로지들 중 최적의 토폴로지로 위상천이 풀-브릿지 컨버터 (Phase-Shift Full-Bridge, PSFB)를 제안하고 타당성을 밝힌다. 또한 토폴로지를 구동하는 스위칭 주파수와 주요 수동소자의 변화에 따른 부피와 효율 등의 Trade-Off 관계를 이론적으로 전개하여 최적화한다.

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