• 제목/요약/키워드: 액화 천연가스 자동차

검색결과 12건 처리시간 0.023초

차량용 LNG연료용기의 단열성능에 관한 연구 (Study on Adiabatic Performance of LNG Storage Tank for Vehicles)

  • 한정옥;이용원
    • 한국가스학회지
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    • 제12권1호
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    • pp.31-35
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    • 2008
  • 압축천연가스 자동차는 최근 대기환경 개선을 위해 대도시 시내버스에 적용되고 있으며 대기 오염물질을 저감시키는데 효과적인 것으로 입증되고 있다. 압축천연가스의 단점인 낮은 연료저장밀도를 높이기 위해 액화천연가스를 연료로 하는 차량기술이 시도되고 있다. 본 논문에서는 자동차에 액화 천연가스를 적용하기 위한 LNG 저장 용기의 단열특성을 실험적으로 측정하여 기준과의 적합성을 판단하였으며 측정방법에 대한 비교검토를 통해 측정결과의 신뢰성을 제고하였다. 시험용기의 단열성능계수는 $40J/h{\cdot}^{\circ}C{\cdot}m^2$으로 기준범위 이내의 성능을 확인하였으며 두 가지 측정방법들은 상호 일치하는 결과를 보여주었다. 또한 용기의 벤트밸브 동작특성을 조사하여 증발가스의 방출량 특성을 파악하였다.

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선박용 가솔린/CNG Bi-fuel 엔진개조 기술 개발 (A Development of Converting Technology for the Marine Gasoline/CNG Bi-fuel Engine)

  • 박명호
    • Journal of Advanced Marine Engineering and Technology
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    • 제34권5호
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    • pp.632-637
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    • 2010
  • 천연가스는 메탄을 주성분으로 하는 청정한 대체연료로 자동차나 트럭 등에 압축천연가스와 액화천연가스 형태로 사용할 수 있다. 그리고, 천연가스만을 사용하는 전소엔진과 가솔린 및 천연가스를 동시에 사용할 수 있는 겸용엔진이 있으며, 특히, 겸용엔진의 경우 두가지 연료를 동시에 사용할 수 있는 것으로 정의할 수 있다. 본 연구에서는 선박용 가솔린 시스템을 인젝터, 레귤레이터, 연료탱크 및 전자제어장치로 구성된 압축 천연가스 겸용시스템으로 전환시켜 연료시스템과 동력값을 비교하였다. 그 결과, 천연가스엔진의 경우 적은 배출가스를 나타내었으며 최대동력은 가솔린엔진과 비교 약 7%정도 감소함을 확인할 수 있었다.

압축천연가스(CNG)버스와 액화석유가스(LPG)자동차 (Compressed Natural Gas Bus & Liquefied Petroleum Gas Vehicle)

  • 윤재건
    • 기술사
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    • 제34권3호
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    • pp.28-32
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    • 2001
  • Using the CNG(compressed natural gas) and LPG(liquified petroleum gas) as the automotive fuel will be expanded because of their clean effect to the environmental air qualify. But these programs of gas using expansion would have a difficulty due to public consideration of gas utilities as a big hazard. The Ministry of Environment has an ambitious plan to substitute more than 25,000 buses with CNG and ensure more than 200 CNG refueling stations as well by the year of 2007. However, it is very difficult to establish new CNG and LPG refueling stations because of expanded safety distance than ever before by several major explosion accidents.

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기체연료엔진의 제어시스템 설계를 위한 엔진 모델링 및 검증 (Engine Modeling and Validation for Control System Design of a Gaseous-fuel Engine)

  • 심한섭;선우명호
    • 한국자동차공학회논문집
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    • 제11권1호
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    • pp.7-17
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    • 2003
  • Highly accurate control of an air-fuel ratio is very important to reduce exhaust gas emissions of gaseous-fuel engines. In order to achieve this purpose, a precise engine model is required to estimate engine performance from the engine design process which is applied to the design of an engine controller. Engine dynamics are considered to develop a dynamic engine model of a gaseous-fuel engine. An effective air mass ratio is proposed to study variations of the engine dynamics according to the water vapor and the gaseous-fuel in the mixture. The dynamic engine model is validated with the LPG engine under steady and transient operating conditions. The experimental results in the LPG gaseous-fuel engine show that the estimation of the air flow and the air-fuel ratio based upon the effective air mass ratio is more accurate than that of a normal engine model.

Design of LNG fuel tank for a light duty truck and numerical analysis of heat leak to LNG tank

  • 민카쇄바 알료나;김성준
    • 산업기술연구
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    • 제27권B호
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    • pp.65-70
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    • 2007
  • The LNG tank are properly designed to fit with the limited installation space of a light duty truck, Hyundai Porter II. This designed LNG tank has 36 liter capacity, so two LNG tanks installed on Porter II truck allow it to run about 432 km per fueling. It is almost two times greater than CNG mileage for same truck. To analyze the relationship between car acceleration and heat leak for different fuel vapor/liquid ratios, the modified Fortran program "Pro-Heatleak" is used. Computational analysis shows that the relationship between the heat leak and vapor/liquid ratio is linearly inversed. Heat leak increases with increasing of car acceleration when fuel vapor/liquid ratio is less than 0.5 and decreases when fuel vapor/liquid ratio is greater than 0.5. The difference between maximum and minimum heat leak for full tank is about 12 percents. For the fuel vapor/liquid ratio equal to 0.5 heat leak does not depend on car acceleration.

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천연가스자동차용 LNG용기에서의 차량가속도와 Heat leak 관계 해석 (Analysis of heat leak with the car acceleration for LNG tank of Natural Gas Vehicle)

  • 알료나 민카쇄바;유영민;박용국;김성준
    • 산업기술연구
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    • 제26권B호
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    • pp.11-20
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    • 2006
  • LNG is a valuable fuel since it offers some environmental, energy security and economic benefits over diesel. It could be used mainly in heavy-duty trucks and buses. Car acceleration induces the slope angle of the liquid fuel in the tank. Slope angle changes the surface area wetted by liquid fuel and consequently heat leak to the tank. This research is a result of numerical simulation of the heat leak with the car acceleration to LNG tank. The "Pro-HeatLeak" Fortran program is developed and the verification test of the developed program is done. The difference between numerical results and calculated results from MathCad verification test is less than 0.07 percent. The smallest heat leak is correspond to the case without oscillation. For the high car acceleration the value of heat leak is greater than that for the small acceleration. The difference between maximum and minimum heat leak for 10 gallons of fuel vapor in the tank is about 10 percent.

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CNG/LPG Bi-fuel 승용차의 배출가스 특성 (Exhaust Emissions Characteristics of Bi-fuel CNG/LPG Passenger Cars)

  • 조종표;이영재;김강출;권오석
    • 한국자동차공학회논문집
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    • 제19권2호
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    • pp.142-147
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    • 2011
  • Compressed natural gas (CNG) is well known as one of the cleanest burning alternative fuels. Bi-fuel CNG vehicle can also run on gasoline or another fuel while dedicated natural gas vehicle is designed to run on natural gas only. Recently, increased attention has been focused on bi-fuel CNG/LPG taxi because of good fuel economy of CNG. A number of LPG taxis modified to CNG Bi-fuel vehicles are running in many cities. In this paper, the emissions characteristics of in-use passenger cars running on CNG and LPG were investigated. Chassis dynamometer test was used to measure exhaust emissions from an in-use fleet of 5 cars. Exhaust emissions were collected for CVS-75 driving mode. The test results showed that for CNG fuel mode, CO, $CO_2$ and NMHC emissions decreased to 9%, 12% and 14% respectively, and $CH_4$ and $NO_x$ emissions increased to 317% and 47% respectively.

여러 가지 운전조건에 따른 가스연료엔진 오존발생량 연구 (The Characteristics of Ozone Formation from a Gaseous Fueled SI Engine with Various Operating Parameters)

  • 김창업;강건용;배충식
    • 한국자동차공학회논문집
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    • 제11권6호
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    • pp.86-92
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    • 2003
  • To analyze the characteristics of ozone formation, measurements of the concentrations of individual exhaust hydrocarbon species have been made under various engine operating parameters in a 2-liter 4-cylinder engine for natural gas and LPG. Tests were performed at constant engine speed, 1800 rpm for two compression ratios of 8.6 and 10.6, with various operating parameters, such as excess air ratio of 1.0~1.6, bmep of 250~800 na and spark timing of BTDC 10~$55^{\circ}$. It was found that the natural gas gave the less ozone formation than LPG in various operating conditions. This was accomplished by reducing the emissions of propylene($C_3H_6$), which has relatively high maximum incremental reactivity factor, and propane($C_3H_8$) that originally has large portion of LPG. In addition, the natural gas show lower values in the specific reactivity and brake specific reactivity. Higher compression ratio of the test engine showed higher non methane HC emissions. However, specific reactivity value decreased since fuel species of HC emissions increase. brake specific reactivity showed almost same values under high bmep, over 500kPa for both fuels. This means that the increase of non methane HC emissions and the decrease of specific reactivity with higher bmep affect each other simultaneously. With advanced spark timing, brake specific reactivity values of LPG were increased while those of natural gas showed almost constant values.

LPG/CNG Interface Box 제품 Hardware 설계 (LPG/CNG Interface Box Hardware Design)

  • 안정훈;정재민
    • 한국자동차공학회논문집
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    • 제15권6호
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    • pp.23-29
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    • 2007
  • In Korea, the number of LPG vehicles is increasing continuously because LPG is cheaper than Gasoline. Also in Europe, the CNG fuel is a good solution to meet $CO_2$ regulation. In order to use LPG/CNG fuel, new EMS ECU must be developed for every type of vehicles and it requires huge development cost. In order to reduce development cost and time, SIEMENS VDO has developed an Interface Box. It supports EMS ECU in the car and manages LPG/CNG fuel injection system. Basically the Interface box can be used with any kind of EMS ECU. The Interface Box controls LPG/CNG injector through the injection command of gasoline EMS ECU. It calculates required amount of based on the fuel temperature and pressure and sends feedback signal to ECU for fuel correction. Also, it controls LPG/CNG specific actuator such a Shut off valves and LPG switch inputs.

CNG/LPLI Bi-Fuel 자동차에서 주행시험 모드와 점화진각에 따른 연비 및 $CO_2$ 배출가스 특성 (Fuel Efficiency and $CO_2$ Emission Characteristics on Driving Cycle Mode and Ignition Advance Condition Change of CNG/LPLI Bi-Fuel Vehicle)

  • 조승완;김성훈;권석주;박성욱;전충환;서영호
    • 한국분무공학회지
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    • 제19권1호
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    • pp.33-39
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    • 2014
  • Due to persist of high oil prices, LPG price stabilization and CNG modification project will be conducted. Present study describes the fuel efficiency and $CO_2$ emission characteristics on driving cycle mode and ignition advance condition change of CNG/LPG Bi-Fuel vehicle. In case of LPG Base and CNG Base condition, considerable $CO_2$ emissions are generated within range of high acceleration on FTP-75 and HWFET driving mode. However previous phenomena does not appear in CNG fuel $10^{\circ}CA$ and $15^{\circ}CA$ spark advance condition. As a result of analyzing the experimental data CNG $S/A10^{\circ}CA$, CNG $S/A15^{\circ}CA$, CNG Base, and LPG Base sequentially measured high fuel economy and low $CO_2$ emission characteristics.