• 제목/요약/키워드: Hybrid Electric vehicle

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동력 분기 하이브리드 전기 자동차의 운행 모드 시뮬레이션 (Operation Modes of a Power Split Hybrid Electric Vehicle)

  • 안국현;조성태;임원식;박영일;이장무
    • 한국신재생에너지학회:학술대회논문집
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    • 한국신재생에너지학회 2006년도 춘계학술대회
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    • pp.547-550
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    • 2006
  • The power split hybrid power train is considered to be one of the most prospective configuration for the hybrid electric vehicle (HEV). Toyota Prius, representing this type of vehicle, showed outstanding performances in fuel efficiency, emission reduction and acceleration. The excellence is largely due to the fact that it utilizes almost all operation modes of HEV. Those modes include ZEV (Zero Emission Vehicle) driving, idle stop, fuel cut-off, power assist, active charging, regenerative braking and so forth. In this paper, a few of the mode operations were simulated using AVL Cruise. Also, control logics to operate the powertrain in each mode were developed. The states of powertrain components were displayed and analyzed. By controlling the three components (engine, motor and generator), it was possible to run the powertrain in several hybrid operation modes.

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리튬 함유 물질로부터 탄산리튬 회수에 대한 고찰 (A review on the recovery of the lithium carbonate powders from lithium-containing substances)

  • 김대원;박재량;안낙균;최광묵;진연호;양재교
    • 한국결정성장학회지
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    • 제29권3호
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    • pp.91-106
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    • 2019
  • 친환경 자동차용(EV: Electric Vehicle, HEV: Hybrid Electric Vehicle, PHEV: Plug-in Hybrid Electric Vehicle) 리튬계 이차전지의 폭발적인 증가로 인하여 리튬의 수요가 매우 가파르게 증가하고 있다. 전통적인 리튬의 생산은 주로 리튬 함유 광물이나 염호에서 이루어졌으나, 최근에는 리튬계 이차전지의 재활용 시 유가금속과 함께 회수되고 있다. 본 연구에서는 리튬이 함유된 물질로부터 리튬을 회수하는 방법에 대하여 종합적으로 고찰하고자 하였다.

하이브리드 자동차 구동 특성 분석을 위한 HIL 방식의 구현 (Implementation of HIL Method to Analyze Driving Characteristic of Hybrid Electric Vehicle)

  • 오성철
    • 한국실천공학교육학회논문지
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    • 제3권2호
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    • pp.100-105
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    • 2011
  • HIL(Hardware-in-the-Loop) 개념을 적용하면 하이브리드 자동차용 부품의 자동차 환경에서의 특성을 부품을 차량에 장착하지 않고도 평가 할 수 있게 된다. 본 논문에서는 특정 전동기를 하이브리드 자동차용 전동기로 사용하였을 경우 자동차의 구동 특성을 분석할 수 있는 HIL 방식을 구현하기 위한 부품 특성 시험. 구동특성 시뮬레이션, 장치 구성 방법을 설명한다. 시험장치는 자동차 시뮬레이터, 부하장치로 구성되며 시뮬레이션에서 사용된 차량제어기를 직접 차량제어기로 사용하게 된다. 부하장치는 차량의 동적 특성을 모의하게 된다. 특히 기존의 차량의 관성을 모의하기 위한 기계적 관성부하를 사용하지 않고 부하장치를 능동적으로 제어 하여 차량에 적용되었을 경우의 전동기 특성을 구할 수 있다. 시험 전동기가 병렬방식 하이브리드 자동차에 적용되었을 경우의 전동기의 실제 특성을 구할 수 있다. 제안된 방식은 하이브리드 자동차의 구동 특성을 교육하기 위한 교육매체로 사용 될 수 있다.

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하이브리드 전기자동차용 배터리 ECU 개발 (Development of the Battery ECU for Hybrid Electric Vehicle)

  • 남종하;최진흥;김승종;김재웅
    • 전력전자학회:학술대회논문집
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    • 전력전자학회 2003년도 춘계전력전자학술대회 논문집(2)
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    • pp.740-744
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    • 2003
  • The development of electric vehicle has been accelerated by the recent 'California Initiative' which has required increasing proportions of new vehicle in Los Angeles area to be ZEV(Zero Emission Vehicles) But, because skill of battery is feeble, ZEV regulation was postponed but that is by CO2 restriction and environmental pollution problem the latest because do development require. In the electric vehicle and hybrid electric vehicle, the battery ECU(Battery Management System, BMS) is very important and an essential equipment. The accurate state of charge(SOC) is required for the battery for hybrid electric vehicles. This paper proposes SOC algorithm for the HEV based on the terminal voltage. Also, designed and analyzed battery ECU to apply on HEV.

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Modeling and Energy Management Strategy in Energetic Macroscopic Representation for a Fuel Cell Hybrid Electric Vehicle

  • Dinh, To Xuan;Thuy, Le Khac;Tien, Nguyen Thanh;Dang, Tri Dung;Ho, Cong Minh;Truong, Hoai Vu Anh;Dao, Hoang Vu;Do, Tri Cuong;Ahn, Kyoung Kwan
    • 드라이브 ㆍ 컨트롤
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    • 제16권2호
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    • pp.80-90
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    • 2019
  • Fuel cell hybrid electric vehicle is an attractive solution to reduce pollutants, such as noise and carbon dioxide emission. This study presents an approach for energy management and control algorithm based on energetic macroscopic representation for a fuel cell hybrid electric vehicle that is powered by proton exchange membrane fuel cell, battery and supercapacitor. First, the detailed model of the fuel cell hybrid electric vehicle, including fuel cell, battery, supercapacitor, DC-DC converters and powertrain system, are built on the energetic macroscopic representation. Next, the power management strategy was applied to manage the energy among the three power sources. Moreover, the control scheme that was based on back-stepping sliding mode control and inversed-model control techniques were deduced. Simulation tests that used a worldwide harmonized light vehicle test procedure standard driving cycle showed the effectiveness of the proposed control method.

하이브리드 전투차량의 기능안전성 적용 연구 (Research on Application of Functional Safety for Developing Combat Hybrid Electric Vehicles)

  • 장교근;이윤복
    • 한국군사과학기술학회지
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    • 제15권5호
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    • pp.543-549
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    • 2012
  • Hybrid electric propulsion systems are expected as future primary combat platforms because the systems can supply enough electric power, easily locate components inside vehicles, and maneuver without undesired noise. However, increasing electric/electronic/software usage causes abnormal failure patterns which have not been noticeable in conventional automotive. Recently, the functional safety standard for road vehicles were enacted and vehicle manufacturers request their components which satisfy standardized quality. This research analyzes functional safety standards(IEC 61508 and ISO 26262) and compares the standards for road vehicles with military standards of system safety. Strategies to apply functional safety in the combat hybrid electric vehicle are scrutinized.

병렬형 디젤 하이브리드 전기 자동차 최적화 (Optimization of the Parallel Diesel Hybrid Vehicle)

  • 염기태;양재식;배충식;김현옥
    • 한국자동차공학회논문집
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    • 제16권6호
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    • pp.26-32
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    • 2008
  • This research presents a simulation for the fuel economy of parallel diesel hybrid vehicle. Diesel engines compared to gasoline engines have the advantages of higher fuel economy and lower $CO_2$ emission. One of the most ways to meet future fuel economy and emissions regulation is to combine diesel engine technology with a hybrid electric vehicle. The simulation of HEV is growing need for rapid analysis of the many configurations and component options. WAVE, a one-dimensional engine analysis tool, was used to a 2.7L diesel engine. ADVISOR, designed for rapid analysis of the performance and fuel economy of vehicle models, was used to conventional and hybrid electric vehicle by the use of output file from WAVE as the input engine data file for ADVISOR. A parallel diesel HEV is at least $19.7{\sim}36%$ higher fuel economy and improved acceleration ability compared to a conventional diesel vehicle. The energy loss of the parallel diesel HEV is $23{\sim}38%$ less than the conventional vehicle using regeneration.

최소 자승법을 이용한 하이브리드용 리튬이온 배터리 모델링 및 특성분석 (Modeling and Characteristic Analysis of HEV Li-ion Battery Using Recursive Least Square Estimation)

  • 김호기;허상진;강구배
    • 한국자동차공학회논문집
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    • 제17권1호
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    • pp.130-136
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    • 2009
  • A lumped parameter model of Li-ion battery in hybrid electric vehicle(HEV) is constructed and system parameters are identified by using recursive least square estimation for different C-rates, SOCs and temperatures. The system characteristics of pole and zero in frequency domain are analyzed with the parameters obtained from different conditions. The parameterized model of Li-ion battery indicates highly dependant of temperatures. The system pole and internal resistance changes 6.6 and 18 times at $-20^{\circ}C$, comparing with those at $25^{\circ}C$, respectively. These results will be utilized on constructing model-based state observer or an on-line identification and an adaptation of the model parameters in battery management systems for hybrid electric vehicle applications.

누적 주행거리에 따른 플러그인 하이브리드 자동차의 연비 특성 연구 (Study on Fuel Economy Characteristics of Plug-In Hybrid Electric Vehicle by Cumulative Distance)

  • 박진성;임재혁;김기호;이정민
    • 한국수소및신에너지학회논문집
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    • 제29권6호
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    • pp.661-667
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    • 2018
  • Electric vehicles are taken a long time to charge and are restricted driving where charging infrastructure was not sufficiently constructed. The vehicle developed to solve these problems is a plug-in hybrid vehicle. It is possible to drive a certain distance by using electric motor and when the battery runs out, it operate the engine. Plug-in hybrid vehicle have a complicated structure and a lot of parts comparing a general vehicle because the electric parts and the internal combustion engine are installed together. Therefore, as the aging (mileage) of the plug-in hybrid vehicle, the influence which change of fuel consumption is expected to be larger than a general vehicle, but an experimental data are lacking. In this paper, we cumulate a mileage of the plug-in hybrid vehicle about 15,000 km and measured the fuel economy when the cumulated distance reached within 160 km, 6,500 km, 15,000 km respectively, by using domestic public test method. For measuring fuel economy of the vehicle, CD mode (driving distance on a single charge) which use only motor and the CS mode which operate motor and combustion engine were measured respectively. As a result, the fuel economy slightly increased at cumulated mileage of 6,500 km compared to the 160 km and the fuel economy of 15,000 km was similar to 160 km.

2축 병렬형 하이브리드 차량의 최저 연비 주행 알고리즘 (An Operation Algorithm for a 2 Shaft Parallel Type Hybrid Electric Vehicle for Optimal Fuel Economy)

  • 최득환;김현수
    • 한국자동차공학회논문집
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    • 제9권5호
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    • pp.122-130
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    • 2001
  • In this paper, an operational algorithm for a 2-shaft parallel hybrid electric vehicle is suggested for the minimization of operation cost. The operation cost is obtained as a summation of the engine fuel cost and the motor electricity cost. The electrical cost function is estimated in case of motoring, and generating when the recuperation is carried out during the braking. In addition, weight function is introduced in order to maintain the battery state of charge. Based on the operation algorithm, the optimal engine operation point that minimizes the operation cost is obtained with respect to the required vehicle power for every state of charge of battery. The optimal operation point provides the optimal power distribution of the engine and the motor for a required vehicle power Simulation was performed and the fuel economy of the hybrid vehicle was compared to that of the conventional vehicle. Simulation results showed that hybrid vehicle's fuel economy can be improved as much as 45∼48% compared to the conventional vehicle's.

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