• Title/Summary/Keyword: Fuel Cell Electric Vehicle

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Design Optimization of Intake Muffler for Fuel Cell Electric Vehicle APU (연료전지 자동차의 공기 공급계용 흡기 소음기의 최적 설계)

  • Kim, Eui-Youl;Lee, Young-Joon;Lee, Sang-Kwon
    • Transactions of the Korean Society of Automotive Engineers
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    • v.20 no.5
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    • pp.44-52
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    • 2012
  • Fuel cell electric vehicles have some noise problems due to its air processing unit which is required to feed the ambient air into the fuel cell stack. Discrete-frequency noises are radiated from a centrifugal blower due to rotor-stator interaction. Their fundamental frequency is the blade passing frequency, which is determined by the number of rotor blades and their rotating speed. To reduce such noises, multi-chamber perforated muffler has been designed. In this paper, in order to improve the transmission loss of a perforated muffler, the relationship between the impedance model of a perforated hole and its noise reduction performance is studied, and the applicability of a short-length perforated muffler to air processing unit of fuel cell system is described using acoustic simulation results and experimental data. The acoustic velocity vector across the neck of a perforated hole is very important design factor to optimize the transmission of an intake muffler. The suggested short-length perforated muffler is effective on discrete-frequency noises while keeping the volume of intake muffler minimized.

The Feasibility Study on Small-scale Prototype Electric Railway Vehicle Application using Fuel Cell Generation System (연료전지 발전시스템을 이용한 축소형 철도차량 적용 선행연구)

  • Jung, No-Geon;Chang, Chin-Young;Chang, Sang-Hoon;Kim, Jae-Moon
    • The Transactions of The Korean Institute of Electrical Engineers
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    • v.63 no.1
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    • pp.184-190
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    • 2014
  • Fuel cell power system, unlike conventional energy sources, converts chemical energy into electrical energy through electrochemical reaction of hydrogen and oxygen. In recent years, railway field as well as mobile fuel cell power system is being studying actively with development of hydrogen storage technologies. This paper presents the feasibility study on small-scale prototype electric railway vehicle application using fuel cell generation system. it is confirmed that proposed fuelcell-battery hybrid system shows good response characteristic about speed and torque based on design of parameter on system. Also as results of response for proposed system modeling, it show that powering mode and braking mode of system is controlled by switching devices of converters.

Policy of Fuel Cell Electric Vehicle and It's Implication (수소연료전지차 정책 및 시사점)

  • Chun, H.W.
    • Electronics and Telecommunications Trends
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    • v.28 no.3
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    • pp.151-159
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    • 2013
  • 수소연료전지차(fuel cell electric vehicle)는 가솔린 내연기관 대신 수소와 공기 중의 산소 결합으로 전기를 자체 생산하는 연료전지를 동력원으로 하는 자동차이다. 엔진이 없기 때문에 배기가스 및 오염물질을 배출하지 않아 세계적으로 점점 강화되고 있는 환경규제에 대응하기 위한 친환경 자동차로 부각되고 있다. 미국, 유럽, 일본 등 주요 선진국들은 수소연료전지차 보급을 앞당기기 위해 기술 개발을 지원하고 있고 수소연료전지차 실증 사업 및 프로젝트를 추진하고 있으며, 수소충전소 인프라 확충 및 관련 제도의 정비에 박차를 가하고 있다.

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Implementation of a CAN Based Real-Time Simulator for FCHEV (하이브리드 연료전지 자동차의 CAN기반 실시간 시뮬레이터 구현)

  • Shim, Seong-Yong;Lee, Nam-Su;Ahn, Hyun-Sik;Kim, Do-Hyun
    • Proceedings of the KIEE Conference
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    • 2004.11c
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    • pp.410-413
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    • 2004
  • In this paper, a simulator system for Fuel Cell Hybrid Electric Vehicles(FCHEV) is implemented using DSP boards with CAN bus. The subsystems of a FCHEV i.e., the fuel cell system, the battery system, the vehicle dynamics with the transmission mechanism are coded into 3 DSP boards. The power distribution control algorithm and battery SOC control are also coded into a DSP board. The real-time monitoring program is also developed to examine the control performance of power control and SOC control algorithms.

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Motor Drive System Analysis and Controller Design for Fuel cell Electronics Vehicle (연료전지 전기자동차 전력 구동시스템 분석 및 전동기 구동시스템 제어기 설계)

  • Lee, Myung-Jin;Park, In-Duck;Kim, Si-Kyung
    • Proceedings of the KIEE Conference
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    • 2004.11c
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    • pp.484-486
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    • 2004
  • In this paper, the power electronics requirement and the controls of an induction motor for fuel cell electric vehicle system are presented. The power topology is selected based on performance, cost, size, volume, manufacturability, component count and simplicity. Another highlight of the topology is the reduction of battery bank and its control strategy. The proposed approach consists a full-bridge DC/DC converter to boost the fuel cell voltage. The induction motor operated with vector control is driven by a three-phase PWM inverter supplied by the DC-link voltage. The investigation of the electric vehicle performed due to parameter variation of the induction motor has been presented.

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An Integrated Humidification System for a Fuel Cell Vehicle (연료전지 자동차용 복합형 가습시스템에 관한 연구)

  • Kim, Hyun-Yoo;Kwon, Hyuck-Ryul;Seo, Sang-Hoon;Park, Yong-Sun;Ahn, Byung-Ki
    • Transactions of the Korean hydrogen and new energy society
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    • v.21 no.6
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    • pp.547-552
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    • 2010
  • In this study, we suggested an integrated humidification system for a fuel cell electric vehicle (FCEV) as an efficient method of humidification under the various driving condition of the fuel cell vehicle and system. It is improving air humidification system combined the existing membrane humidifier and water injection. As a result, we verified it through experiments and the vehicle test and could get a result of improvement of humidification performance. The results show that an integrated humidification system is a useful method for FCEV applications.

Development of the Integrated Fuel Cell Monitoring System (통합 연료전지모니터링 시스템 개발)

  • KIM, HYUNJUN;YEOM, SANGCHUL;AHN, BYUNGKI;KIM, SAEHOON;KUM, YEONGBEOM
    • Transactions of the Korean hydrogen and new energy society
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    • v.26 no.3
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    • pp.241-246
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    • 2015
  • The interest of New Renewable Energy is increasing globally because of the increment of the uncertainty for the energy's supply and demand, and the increment of the frequency in weather anomaly and its damages. One of the New Renewable Energies, Hydrogen receives attention as the future energy that can deal with global environment regulation. Fuel Cell Electric Vehicle (FCEV) is an environment-friendly vehicle that uses Hydrogen as fuel. The electric power for FCEV is generated by chemical reaction with Oxygen from the air and Hydrogen. Hyundai Motor Company (HMC) has developed a proprietary fuel cell system since 2005. In 2012, HMC is the first car maker that mass-produces the ix35 FCEV to the worldwide such as North America, Europe, etc. In order to develop and improve the FCEV technology, data acquisition and analysis of the driving vehicle information is essential. Therefore, the monitoring system is developed, which is consist of datalogger, Automatic Vehicle Location (AVL) server and main server. Especially, WCDMA technology is integrated into the system which enables the data analysis without any restriction of time and region. The main function of the system is the analysis of the driving pattern and the component durability, and the safety monitoring. As a result, ix35 FCEV has successfully developed by using the developed monitoring system. The system is going to take an advantage of development in the future FCEV technology.

Transient Performance of a Hybrid Electric Vehicle with Multiple Input DC-DC Converter

  • Nashed, Maged N.F.
    • Journal of Power Electronics
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    • v.3 no.4
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    • pp.230-238
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    • 2003
  • Electric vehicles (EV) demands for greater acceleration, performance and vehicle range in pure electric vehicles plus mandated requirements to further reduce emissions in hybrid electric vehicles (HEV) increase the appeal for combined on-board energy storage systems and generators. And the power electronics plays an important role in providing an interface between fuel cells (FC) and loads. This paper deals with a multiple input DC-DC power converter devoted to combine the power flowing of multi-source on energy systems. The multi-source is composed of (i) FC system as a prime power demands, (ii) super capacitor banks as energy storage devices for high and intense power demands, (iii) superconducting magnetic energy storage system (SMES), (iv) multiple input DC-DC power converter and (v) a three phase inverter-fed permanent magnet synchronous motor as a drive. In this system, It is used super capacitor banks and superconducting magnetic energy replaces from the battery system. The modeling and transient performance simulation is effective for reducing transient influence caused by sudden charge of effective load. The main purpose of power electronic converters is to convert the DC power output from the fuel cell and other to a suitable AC voltage, which can be connected to electric loads directly (PMSM). The fuel cell and other output is connected to the DC-DC converter, which regulates the DC link voltage.

Trend of the Recent Technology for the Vehicle with Motor Power Train (최근의 전동기 구동시스템을 가진 자동차의 기술개발 추이)

  • Ha, Hoi-Doo
    • Proceedings of the KIEE Conference
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    • 2000.07b
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    • pp.1027-1029
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    • 2000
  • Electric vehicle(EV), hybrid electric vehicle(HEV) and fuel cell electric vehicle(FEV) are seen as one way of reducing the harmful effects of traffic and of improving energy efficiency. Therefore the status and developing trend of the EV, HEV and FEV are given in this paper. A major aspect of alternative drive trains is the electric drive train. The automotive aspect in developing electric drive trains is emphasized.

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Practical Implementation of an Interleaved Boost Converter for Electric Vehicle Applications

  • Wen, Huiqing;Su, Bin
    • Journal of Power Electronics
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    • v.15 no.4
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    • pp.1035-1046
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    • 2015
  • This study presents a practical implementation of a multi-mode two-phase interleaved boost converter for fuel cell electric vehicle application. The main operating modes, which include two continuous conducting modes and four discontinuous conducting modes, are discussed. The boundaries and transitions among these modes are analyzed with consideration of the inductor parasitic resistance. The safe operational area is analyzed through a comparison of the different operating modes. The output voltage and power characteristics with open-loop or closed-loop operation are also discussed. Key performance parameters, including the DC voltage gain, input ripple current, output ripple voltage, and switch stresses, are presented and supported by simulation and experimental results.