• 제목/요약/키워드: LPG 엔진

검색결과 175건 처리시간 0.02초

Soot 저감을 위한 촉매 분사 최적화 방안 연구 (A Study on Optimization of Catalyst Injection Controller for Reducing Soot)

  • 김병우
    • 한국산학기술학회논문지
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    • 제7권3호
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    • pp.278-284
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    • 2006
  • 가솔린 엔진에 비하여 디젤 엔진은 효율성, 신뢰성, 내구성 측면에서 우수한 특성을 보유하고 있다. 그러나, 디젤 엔진의 최대 약점은 카본기 물질로 알려진 분진(PM)의 방출이다. 최근 엔진 제어와 후처리를 통하여 엄격한 규제 조항에 부합하는 커다란 기술적 발전을 이룩하였다. 보다 엄격하게 진행되고 있는 환경규제를 대응하기 위하여, 본 연구에서는 배기가스 온도 증대를 통한 PM 저감 방안에 초점을 맞추었다. PM 재생 온도를 증대시키기 위하여, DPF 필터와 DOC 전방에 HC를 분사하는 방안을 제안하였다. 본 연구를 통하여, 우리는 LPG 분사 특성을 파악할 수 있는 벤치를 제작하고 관련 DB를 구축하여 LPG 분사 최적화와 ECU 제어 로직을 정량화 할 수 있었다.

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중형 디젤을 기초한 LPG엔진에서 배기가스온도 저감 연구 (A Study on Reduction of Exhaust Gas Temperature in Retrofitted LPG Fueled Engine Based Medium-Duty Diesel Engine)

  • 최경호;조웅래
    • 한국자동차공학회논문집
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    • 제11권2호
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    • pp.63-68
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    • 2003
  • The purpose of this study was to investigate reduction of exhaust gas temperature in LPG conversion engine from diesel. A conventional diesel engine was modified to a LPG(Liquified Petroleum Gas) engine that diesel fuel injection pump was replaced by the LPG fuel system. The research was peformed with measurement of exhaust gas temperature by varying spark ignition timing, air-fuel ratio, compression ratio, EGR ratio and different compositions of butane and propane. The major conclusion of this work were followed. (i) Exhaust gas temperature was decreased and power was increased with the advanced spark ignition timing. (ii) Exhaust gas temperature was decreased with lean and rich air-fuel ratio. (iii)Exhaust gas temperature was decreased and power was increased with the higher compression ratio. (iv) Engine power and exhaust temperature were not influenced by varied butane/propane fuel compositions. (v) Finally, one of the important parameters in reduction of exhaust gas temperature is spark ignition timing among the parameters in this study.

LPG / 가솔린 겸용차량의 점화시기 변환에 의한 엔진성능고찰 (A Study on Engine Performance of the Ignition Spark Timing Conversion for LPG/Gasoline Bi-fuel Vehicle)

  • 전봉준;박명호
    • 한국기계기술학회지
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    • 제13권3호
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    • pp.39-47
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    • 2011
  • In a bi-fuel engine using gasoline and LPG fuel, with the current ignition timing for gasoline being used, the optimum performance could not be taken in LPG fuel supply mode. The ignition timing in LPG fuel mode must be advanced much more than that of gasoline mode for the compensation of its higher ignition temperature. The purpose of this study is to investigate how the ignition spark timing conversion influences the engine performance of LPG/Gasoline Bi-Fuel engine. In order to investigate the engine performance during combustion, engine performance are sampled by data acquisition system, for example cylinder pressure, pressure rise rate and heat release rate, while change of the rpm(1500, 2000, 2500) and the ignition timing advance($5^{\circ}$, $10^{\circ}$, $15^{\circ}$, $20^{\circ}$). As the result, between 1500rpm, 2000rpm and 2500rpm, the cylinder pressure and pressure rise rate was increased when the spark ignition was advanced but pressure rise rate at $20^{\circ}$ was smaller value.

LPG 엔진의 냉 시동시 시동성 개선 및 배출들 저감을 위한 연구 (A Study for the Improvement of Start Ability and Exhaust Emissions in a Conventional Mixer Type LPG Engine on Cold Start)

  • 김우석;이종화
    • 한국자동차공학회논문집
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    • 제10권1호
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    • pp.84-92
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    • 2002
  • On the cold start of LPG engine, as the engine temperature has not reached its equilibrium temperature, liquid LPG could not be changed perfectly gaseous LPG, although it was passed to the vaporizer. Liquid and gas mixed fuel could influence starting ability and exhaust emission characteristics of LPG engine. In this study, the vaporization characteristic of liquid LPG was investigated with a conventional vaporizer and the vaporizer with heat source(glow plug) installed at preheated chamber inlet, by using the visualization methods and engine test. According to visualization result, even if the engine coolant temperature was $14^{\circ}C$, liquid fuel was supplied to primary chamber over 25 seconds without vaporizing from preheated chamber in such a conventional vaporizer. However, the vaporizer with heat source do not correspond with that, scarcely had been trim on glow plug when LPG began to vaporize. The effectiveness of heat source could be verified by application to the conventional LPG engine.

제3세대 LPLI 엔진 연소실내 스월유동 및 희박연소 특성 해석 (Analysis of Cylinder Swirl Flow and Lean Combustion Characteristics of 3rd Generation LPLI(Liquid Phase LPG Injection) Engine)

  • 강건용;이진욱
    • Journal of Advanced Marine Engineering and Technology
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    • 제31권1호
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    • pp.26-33
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    • 2007
  • The intake swirl motion, as one of dominant effects for an engine combustion. is very effective for turbulence enhancement during the compression process in the cylinder of 2-valve engine. Because the combustion flame speed is determined by the turbulence that is mainly generated from the mean flow of the charge air motion in intake port system. This paper describes the experimental results of swirl flow and combustion characteristics by using the oil spot method and back-scattering Laser Doppler velocimeter (LDV) in 2-valve single cylinder transparent LPG engine using the liquid phase LPG injection. For this. various intake port configurations were developed by using the flow box system and swirl ratios for different intake port configurations were determined by impulse swirl meter in a steady flow rig test. And the effects of intake swirl ratio on combustion characteristics in an LPG engine were analyzed with some analysis parameters that is swirl ratio. mean flow coefficient, swirl mean velocity fuel conversion efficiency. combustion duration and cyclic variations of indicated mean effective pressure(IMEP). As these research results, we found that the intake port configuration with swirl ratio of 2.0 that has a reasonable lean combustion stability is very suitable to an $11{\ell}$ heavy-duty LPG engine with liquid phase fuel injection system. It also has a better mean flow coefficient of 0.34 to develope a stable flame kernel and to produce high performance. This research expects to clarify major factor that effects on the design of intake port efficiently with the optimized swirl ratio for the heavy duty LPG engine.

대기온도, 증발기 누출, 엔진오일 및 엔진부하에 따른 LPG 차량의 연비실험에 관한 연구 (Experimental Study on Fuel Consumptions of LPG Vehicle Depending on the Atmospheric Temperature, Vaporizer Gas Leakage, Engine Oil and Engine Loads)

  • 김청균;이일권
    • 한국가스학회지
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    • 제13권5호
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    • pp.1-6
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    • 2009
  • 본 논문에서는 LPG 차량의 연비효과에 미치는 대기온도, 증발기의 가스누출, 엔진오일의 점도, 엔진의 부하조건을 실험적으로 고찰하고자 한다. 연비에 대한 시험결과에 의하면, 엔진의 온도가 상승할수록 연비효과도 함께 점차 높아지고 있다. 대기온도가 $24.2^{\circ}C$일 때의 연비는 $1^{\circ}C$일 때보다 13.6% 정도 높게 나타난 것을 알 수 있다. LP가스 누출이 없는 증발기의 연비는 가스누출이 있는 경우에 비해 5.3%나 좋아지는 것으로 확인되었다. 반면에 엔진오일을 새로 교환한 경우의 연비는 9,500km를 주행한 오일에 비해 1.1% 정도 향상된 것으로 나타났으며, 이것은 대기온도나 증발기의 누설조건에 비해 상대적으로 낮은 영향을 미치는 것으로 관찰되었다. 연비에 더 많은 영향을 미치는 요소는 급제동, 급출발, 급가속과 같은 운전조건으로 판단된다. 연비시험 결과에 의하면, 정상출발은 급출발에 비해 32.3%나 연비가 향상되었고, 급가속은 급출발보다 10.8%나 우수한 연비조건을 보여주고 있다. 또한, 급제동은 급출발보다 18.3%나 우수한 연비상태를 나타내고 있다. 결국 비정상적인 주행조건은 정상적인 운전패턴에 비해 연비가 나쁜 것으로 나타났으므로, 연비를 높이기 위해서는 차량의 주행조건을 정상상태로 유지하는 것이 대단히 중요함을 알 수 있다.

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대형엔진용 액상분사식 LPG 연료공급 방식에 대한 기초연구 (1) (Fundamental Study on Liquid Phase LPG Injection System for Heavy-Duty Engine (I))

  • 김창업;오승묵;강건용
    • 한국자동차공학회논문집
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    • 제9권4호
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    • pp.85-91
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    • 2001
  • LPG has been well known as a clean alternative fuel for vehicles. As a fundamental study on liquid phase LPG injection (hereafter LPLI) system application to heavy-duty engine, engine output and combustion performance were investigated with various operating conditions using a single cylinder engine equipped with the LPLI system. Experimental results revealed that no problems were occurred in application of the LPG fuel to heavy-duty engine, and that volumetric efficiency and engine output, by 10% approximately, were increased with the LPLI system. It was resulted from the decrease of the intake manifold temperature through liquid phase LPG fuel injection. These results provided an advantage in the decrease of the exhaust gas temperature, in the control of knocking phenomena, spark timing and compression ratio. The LPLI engine could normally operated under $\lambda$=1.5 or EGR 30% condition. The optimized swirl ratio for the heavy duty LPG engine was found around R_s$ = 2.0.

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분사노즐 근처의 LPG 분무거동 (LPG Spray Behavior Near Injection Nozzle)

  • 조현철;오승우;이기훈;배영주;박권하
    • 한국분무공학회지
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    • 제7권2호
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    • pp.16-21
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    • 2002
  • Liquefied petroleum gas (LPG) has been used as motor fuel due to its low emissions and low cost. This study addresses the analysis of the LPG spray behavior near injection nozzle. The LPG spray photographs are compared with sprays of diesel fuel at the same conditions. The LPG spray photos show that the dispersion characteristic depends very sensuously on the ambient pressure soon after injection. The spray angle is very wide in a low ambient pressure condition until the saturated pressure at this test condition, but the angle value is quickly reduced at the condition over the pressure.

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LPG엔진에서의 윤활유 열화 (The Deterioration of Lubricants in LPG Engine)

  • 류재곤;문우식
    • 한국윤활학회:학술대회논문집
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    • 한국윤활학회 2000년도 제32회 추계학술대회 정기총회
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    • pp.100-106
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    • 2000
  • Recently, the population of vehicles using LPG as fuel has been increasing due to relatively low fuel price and low tax. Although gasoline engine oils we usually used to lubricate LPG engines, some troubles such as oil thickening and TBN depletion were found in them under severe operating condition. In order to investigate the deterioration mechanism of lubricants in LPG engine, field trials were performed. The results from the field trials showed that the deterioration of oils in LPG engine is different from that in normal gasoline engine. LPG engine oil was deteriorated mainly through oxidation and nitration at high temperature rather than contamination of fuel combustion products.

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LPG엔진에서 이온프로브를 이용한 노킹 발생 위치 추정에 관한 연구 (Study on the Estimation of Knock Position in a LPG Engine with Ion-probe Head Gasket)

  • 이정원;최회명;조훈;황승환;민경덕
    • 한국자동차공학회논문집
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    • 제11권1호
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    • pp.42-48
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    • 2003
  • LPG has been a broad concern of pro-environmental alternative fuel for vehicles. Recently, the new Liquid Phase LPG Injection(LPLI) system extends the limit of power of LPG engine and gives a chance to substitute LPG engine for diesel engine of heavy duty vehicles that are the main resources of air pollution in urban area. Large bore size of heavy duty LPG engine derives a serious knock problem. To find an optimal MBT conditions, it is necessary to know how the flame develops in the combustion chamber and find where the knock positions are. In this study. the ion-probe head gasket was used to estimate the knock position. Inverse operation of the ion-probe signal provides the flame developing characteristics. The further the position is from the spark plug, the later the flame arrives and the more times knock occurs. The main factor that effects knock position is inferred a flor situation of mixed gas in the combustion chamber.