• Title/Summary/Keyword: hybrid electric vehicle

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FES(Flywheel Energy Storage) is ready for HEV(Hybrid Electric Vehicle) (하이브리드 자동차를 위한 플라이 휠 에너지 저장 기술)

  • Ahn Hyeong-Joon;Park In-Hwang;Han Dong-Chul
    • 한국신재생에너지학회:학술대회논문집
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    • 2005.06a
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    • pp.366-369
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    • 2005
  • 최근 환경 및 에너지 문제가 자동차 산업의 중요한 이슈로 인식되면서 하이브리드 자동차(Hybrid Electric Vehicle) 기술과 연료 전지 자동차(Fuel Cell Vehicle)등이 주목받고 있다. 특히 하이브리드 자동차는 요구되는 동력과 생성되는 동력의 차이 때문에 순시 동력 저장 장치 (peak power buffer)가 필요한데, 반복적인 충/방전 싸이클에서 용량의 감소 없이 높은 단위 질량당의 동력과 에너지를 가지며 부피, 효율, 수명 면에서도 우수한 플라이 휠 에너지 저장장치가 이러한 동력 저장 장치로 적합하다. 본 논문은 하이브리드 자동차를 위한 플라이 휠 에너지 저장 장치의 현 상태 (state of art)를 기술한다. 첫번째로, 플라이 휠 에너지 저장장치의 기원과 배경을 설명한다. 두 번째로 하이브리드 자동차를 위한 플라이 휠 에너지 저장 장치의 세부 사항을 요약하고, 플라이 휠 에너지 저장을 이용한 하이브리드 자동차의 예와 플라이 휠 에너지 저장장치의 설계 쟁점과 자동차에 적용시키기 위한 최근 기술적 진보를 논의한다. 마지막으로, 플라이 휠 에너지 저장장치의 파급 효과와 다른 적용 예를 소개한다.

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Analysis of Powertrain Efficiency for Input Split Type Hybrid Electric Vehicle considering Planetary-gear Efficiency (유성기어 효율을 고려한 입력분기 기반 하이브리드 전기자동차의 동력전달 효율 해석)

  • Kim, Jeongmin
    • Transactions of the Korean Society of Automotive Engineers
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    • v.23 no.5
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    • pp.508-514
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    • 2015
  • In this paper, the powertrain efficiency is analyzed for the input split type hybrid electric vehicle. For considering the powertrain loss, the power loss models of planetary gear and motor are applied. And, the mathematic equations of powertrain speed and torque are found by using the lever analogy. With the above models and equations, the powertrain efficiency is analyzed for the 0 to 180 km/h vehicle velocity range. From the analysis results, it is found that the transmission efficiency with the power loss of planetary gear is smaller maximum 2.1% than the transmission efficiency without the power loss of planetary gear.

Simulation Study on the Fuel Economy of Plug-in Type Hybrid Electric Vehicle (외부충전 방식 하이브리드 전기자동차의 연비 시뮬레이션)

  • 최득환;김현수
    • Transactions of the Korean Society of Automotive Engineers
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    • v.10 no.5
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    • pp.121-128
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    • 2002
  • In this paper, the fuel economy of plug-in type hybrid electric vehicle is investigated through simulation. For the simulation study, 2 shaft type parallel hybrid powertrain is chosen and its operation modes are described. The operation algorithm which yields operation points of minimal fuel cost is suggested. Dynamic model fur operation of HEV and simulation procedure is described. Simulation results of fuel economy is compared to non plug-in type HEV as well as conventional vehicle. With total driving distance of 37km and full usage of 2kwh of electric energy stored in battery pack, plug-in type HEV shows 28-30% improved fuel economy compared to non plug-in type HEV and 86-93% improved fuel economy compared to conventional vehicle.

Design Procedures of LLC Resonant Converter for Electric Vehicle On-Board Charger (전기자동차 OBC용 LLC 공진형 컨버터의 설계절차)

  • Jung, Yong-Chae
    • The Journal of the Korea institute of electronic communication sciences
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    • v.9 no.1
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    • pp.91-96
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    • 2014
  • nowadays, many researches for plug-in hybrid electric vehicles have been actively carried out to improve the gas mileage in comparison with mass-produced hybrid electric vehicles. In this paper, the on-board charger for plug-in hybrid electric vehicles is studied for obtaining the high efficiency. The on-board charger consists of two phase interleaved PFC circuit and LLC resonant converter. The new design procedures of LLC resonant converter are proposed in this paper. These are very simple and powerful method. In order to verify the abovementioned contents, the LLC resonant converter is designed and tested by using PSIM tool.

POWER AND ENERGY STORAGE DEVICES FOR NEXT GENERATION HYBRID ELECTRIC VEHICLE (차세대 복합형 전기자동차의 전력 및 에너지 저장장치)

  • Kim, Min-Huei
    • Journal of the Korean Society of Industry Convergence
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    • v.1 no.1
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    • pp.31-41
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    • 1998
  • Fuel conservation and environmental pollution control are the principal motivating factors that are urging at present widespread research and development activities for electric hybrid vehicles throughout the world. The paper describes different possible energy storage devices, such as battery, flywheel and ultra capacitor, and power sources, such as gasoline engine, diesel engine, gas turbine and fuel cell for next generation hybrid electric vehicle. The technology trend and comparison in energy storage and power devices indicate that battery and gasoline engine, respectively will remain the most viable devices for hybrid vehicle at least in the near future.

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Characteristics of Fuel Economy and Greenhouse Gases according to Driving Mode Conditons of Hybrid Electric Vehicles (HEV 주행모드에 따른 연비·온실가스 특성)

  • Kang, Eunjeong;Kwon, Seokjoo;Seo, Youngho
    • Journal of Institute of Convergence Technology
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    • v.5 no.1
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    • pp.23-26
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    • 2015
  • The purpose of present study is to analysis the Characteristics of fuel economy and Green house gases due to the driving mode conditions of The hybrid electric vehicle(HEV). HEVs are divided into mild and power types according to the their functions. mild type HEVs are inexpensive because they do not need to implement a pure electric mode. Power type HEVs are more expensive but has also better fuel efficiency. In the present paper, the test results for the gasoline vehicle using FTP-75 mode and HWFET are present.

Analysis of the Influence of an Architecture on Vehicle Performances (입력 분기식 하이브리드 동력전달계의 구조별 성능 분석)

  • Yang, Ho-Rim;Jo, Nam-Uk;Cho, Sung-Tae;Lim, Won-Sik;Cha, Suk-Won
    • 한국신재생에너지학회:학술대회논문집
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    • 2006.11a
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    • pp.109-112
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    • 2006
  • In the recent studies, various types of multi mode electric variable transmission for hybrid electric vehicle have been proposed. Multi mode electric variable transmission consists of two or more different type planetary gear hybrid powertrain system(PGHP), which can change its power flow type by means of clutches for improving transmission efficiencies. Generally the power flows can be classified into three different types such as Input split, output split nd compound split. In This paper, we present velocity and torque equations of the input-split powertrain and analyze its optimal Performances. There are six combinations of the input-split powertrain, each combination has various lever length. We find optimal planetary gear ratios for fuel economy and acceleration performance, and compare performances of each combination.

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Modeling of Hybride Electric Vehicle Drivetrain and Development of Simulation Program (하이브리드 전기차량 동력부의 모델링 및 성능평가 프로그램 제작)

  • 김도형;박영진
    • Transactions of the Korean Society of Automotive Engineers
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    • v.8 no.6
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    • pp.122-129
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    • 2000
  • This paper describes a hybrid dynamic system(HDS) modeling method and result for the drivertrain of a parallel hybrid electric vehicle(PHEV) which consists of a gasoline engine, an electric machine, and a continuous variable transmission (CVT) and proposes a drivetrain control system. The control system has an engine controller, a motor controller, a CVT controller and a supervisory controller for the coordination of all system. The controller keep the speed of engine wheel and the output torque within the optimal operation range based on the experimental data. We also developed a MATLAB/SIMULINK program for the performance simulation of PHEV drivetrain model and controllers and compared the simulation result with the experiment result in the recent literatures.

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Simulator for Monitoring the Operations of Range Extender Electric Vehicles

  • Chun, Tae-Won;Tran, Quang-Vinh;Lee, Hong-Hee;Kim, Heung-Geun;Nho, Eui-Cheol
    • Journal of Power Electronics
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    • v.11 no.4
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    • pp.424-429
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    • 2011
  • In this paper, the simulator of an on-line monitoring system for the range extender electric vehicle has been developed. The messages from the four control modules, the air pressure and fuel level sensors data, and the on/off switching states of 31 indicator lamps can be received through the control area network (CAN), and displayed on the graphic panel. The simulator was designed using the four DSP boards, variable resistors, and toggle switches instead of the four control modules, sensors, and switching state of indicator lamps on an actual series hybrid electric vehicle (SHEV) bus, respectively. The performance of the monitoring technologies was verified with the simulator at the laboratory, and then it was tested on an actual SHEV bus. The simulator is very useful at the initial development of the monitoring system at the hybrid-type or electrical vehicles.

Steady State Performance Analysis of Five-mode Hybrid Power Transmission Systems (5-모드 하이브리드 동력전달 시스템의 정상상태 성능분석)

  • Lim, Won-Sik;Kim, Nam-Woong;Choi, Wan-Mug;Park, Sung-Cheon
    • Journal of the Korean Society of Manufacturing Technology Engineers
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    • v.23 no.1
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    • pp.7-14
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    • 2014
  • The core of the automotive industry's strategy to handle the climate change can be explained as the development and distribution of the vehicles with high fuel efficiencies and low emission. Clean Diesel, hydrogen fuel cell, electric, and especially hybrid power-train vehicles have been actively studied. This paper dynamically analyzes the performance of a hybrid system's five driving modes. The research subject consists of one engine, two electric motors, two simple planetary gears, and one compound planetary gears with five clutches. To define the steady state equation of the system, interaction formulas of five driving modes are introduced with motion variables and torque variables. These formulas are then used to analyze the speeds, torques, and power flows of each mode.