• 제목/요약/키워드: 제어자발화

검색결과 12건 처리시간 0.034초

제어자발화 가솔린기관의 성능 특성 (Performance Characteristics of a Controlled Auto-Ignition Gasoline Engine)

  • 김홍성
    • 한국기계가공학회지
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    • 제4권1호
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    • pp.56-62
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    • 2005
  • In this study, A controlled auto-ignition (CAI) single cylinder gasoline engine is considered, focusing on the extension of operating conditions. The fuel is injected indirectly into electrically heated inlet air flow. Investigated are the engine performance characteristics under the wide range of operating conditions such as 32 to 63 in the air-fuel ratio, 1000 to 1800 rpm in the engine speed, and 150 to $180^{\circ}C$ in the inlet-air temperature. A controlled auto-ignition gasoline engine which has the super ultra lean-burn with self-ignition of gasoline fuel can be achieved by heating inlet air.

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분사시기의 변화에 따른 제어자발화 가솔린기관의 성능 및 배기특성 (Performance and Emission Characteristics of a Controlled Auto-Ignition Gasoline Engine according to Variation of the Injection Timing)

  • 김홍성
    • 동력기계공학회지
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    • 제9권1호
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    • pp.14-22
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    • 2005
  • This work deals with a controlled auto-ignition (CAI) single cylinder gasoline engine, focusing on the extension of operating conditions. The fuel is injected indirectly into electrically heated inlet air flow. In order to keep a homogeneous air-fuel mixing, the fuel injector is water-cooled by a specially designed coolant passage. Investigated are the engine performance and emission characteristics under the wide range of operating conditions such as 40 in the air-fuel ratio, 1000 to 1800 rpm in the engine speed, $150\;to\;180^{\circ}C$ in the inlet-air temperature, and $80^{\circ}$ BTDC to $20^{\circ}$ ATDC in the injection timing. A controlled auto-ignition gasoline engine can be achieved that the ultra lean-burn with self-ignition of gasoline fuel by heating inlet air. It can be achieved that the emission concentrations of carbon monoxide, hydrocarbons and nitrogen oxide had been significantly reduced by CAI combustion compared with conventional spark ignition engine.

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흡입공기온도의 변화에 따른 제어자발화 가솔린기관의 성능 및 배기 특성 (Performance and Emission Characteristics of a Controlled Auto-Ignition Gasoline Engine according to Variation of the Inlet-Air Temperature)

  • 김홍성
    • 동력기계공학회지
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    • 제10권1호
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    • pp.19-24
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    • 2006
  • This work treats a controlled auto-ignition (CAI) single cylinder gasoline engine, focusing on the extension of operating conditions. The fuel was injected indirectly into electrically heated inlet air flow. In order to keep a homogeneous air-fuel mixing, the fuel injector was water-cooled by a specially designed coolant passage. The engine performance and emission characteristics were investigated under the wide range of operating conditions such as 40 in the air-fuel ratio, 1000 to 1800 rpm in the engine speed, 150 to $180^{\circ}C$ in the inlet-air temperature, and $60^{\circ}$ BTDC in the injection timing. The ultra lean-burn with self-ignition of gasoline fuel by heating inlet air was achieved in a controlled auto-ignition gasoline engine. It could be also achieved that the emission concentrations of carbon monoxide, hydrocarbons and nitrogen oxide significantly reduced by CAI combustion compared with conventional spark ignition engines.

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분사시기의 변화에 따른 제어자발화 가솔린기관의 배기특성 (An Emission Characteristics of a Controlled Auto-Ignition Gasoline Engine According to Variation of the Injection Timing)

  • 김홍성
    • 동력기계공학회지
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    • 제8권3호
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    • pp.5-10
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    • 2004
  • This work deals with a controlled auto-ignition (CAI) single cylinder gasoline engine, focusing on the extension of operating conditions. In order to keep a homogeneous air-fuel mixing, the fuel injector is water-cooled by a specially designed coolant passage. Investigated are the engine emission characteristics under the wide range of operating conditions such as 40 in the air-fuel ratio, 1000 to 1800 rpm in the engine speed, $150\;to\;180^{\circ}C$ in the inlet-air temperature, and $80^{\circ}$ BTDC to $20^{\circ}$ ATDC in the injection timing. A controlled auto-ignition gasoline engine which has the ultra lean-burn with self-ignition of gasoline fuel can be achieved by heating inlet air. It can be achieved that the emission concentrations of carbon monoxide, hydrocarbons and nitrogen oxides had been significantly reduced by CAI combustion compared with conventional spark ignition engine.

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공기연료비의 변화에 따른 제어자발화 가솔린기관의 배기 특성 (An Emission Characteristics of a Controlled Auto-Ignition Gasoline Engine according to Variation of the Air-Fuel Ratio)

  • 김홍성
    • 한국기계가공학회지
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    • 제3권2호
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    • pp.79-85
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    • 2004
  • This work treats a controlled auto-ignition (CAI) single cylinder gasoline engine, focusing on the extension of operating conditions. Investigated are the engine emission characteristics under the wide range of operating conditions such as 32 to 63 in the air-fuel ratio, 1000 to 1800 rpm in the engine speed, and 150 to $180^{\circ}C$ in the inlet-air temperature. A controlled auto-ignition gasoline engine can be achieved the ultra lean-burn with self-ignition of gasoline fuel by heating inlet air. It can be achieved that the emission concentrations of carbon monoxide, hydrocarbons and nitrogen oxides had been significantly reduced by CAI combustion compared with conventional spark ignition engines.

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제어자발화 가솔린기관의 배기 특성 (An Emission Characteristics of a Controlled Auto-Ignition Gasoline Engine)

  • 김홍성
    • 동력기계공학회지
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    • 제13권3호
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    • pp.5-10
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    • 2009
  • This work deals with a controlled auto-ignition (CAI) single cylinder gasoline engine, focusing on the extension of operating conditions. The fuel is injected indirectly into electrically heated inlet air flow. In order to keep a homogeneous air-fuel mixing, the fuel injector is cooled by the water of a specially designed coolant passage. The engine emission characteristics were investigated under the wide range of operating conditions such as 32 to 63 in the air-fuel ratio, 1000 to 1800 rpm in the engine speed, and 150 to $180^{\circ}C$ in the inlet air temperature. The ultra lean-burn can be achieved by the auto-ignition of gasoline fuel due to the heated inlet air in the compression ignition gasoline engine. It is confirmed that the emission concentrations of carbon monoxide, hydrocarbons and nitrogen oxide can be significantly reduced by CAI combustion compared with the combustion of a conventional spark ignition engine.

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중학생들의 모델링 활동에서 메타인지 분석에 관한 사례연구 (An Analysis of Metacognition on the Middleschool Students' Modeling Activity)

  • 신은주;이종희
    • 대한수학교육학회지:수학교육학연구
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    • 제14권4호
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    • pp.403-419
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    • 2004
  • 모델링 활동은 학생들의 메타인지적 사고를 촉진할 수 있는 환경을 제공할 것이라는 시각에 기반을 두어 본 연구를 행하였다. 따라서 사례연구 방법으로 중학생들의 모델링 활동에서 어떤 메타인지적 사고가 나타나는지를 조사하였다 연구 결과, 학생들이 모델링 활동을 하는 동안 모델을 개발하기 위해 자신의 활동을 모니터하고 제어하는 메타인지가 자발적으로 활성화되었다. 또한 소그룹으로 모델링 활동을 하면서 자기평가와 동료평가가 활성화되었고, 이를 통해 모델을 수정하고 정교화하면서 일반화 가능한 모델을 개발하였다.

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다채널 포토다이오드를 이용한 화염 자발광 특성에 대한 실험적 연구 (An Experimental study on characteristics of flame chemiluminescence using multi channel photo diode)

  • 장병화;권민준;김대해;이창엽;김세원
    • 한국연소학회:학술대회논문집
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    • 한국연소학회 2015년도 제51회 KOSCO SYMPOSIUM 초록집
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    • pp.319-320
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    • 2015
  • This study is aiming to establish the relationship between the optical signal of flame through an optical fiber and the equivalent ratio of flame. In this experiment, flame optical signal in a furnace is measured using photodiode. The combustion system is composed of 15W turbulent burner and industrial boiler, and flame chemiluminescence is measured at various experimental conditions. In this study, the flame chemiluminescence of turbulent premixed flame is measured using commercially available photodiode. It is experimentally investigated the relationship between equivalent ratio and photodiode signal.

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플레임트랩에 의한 메탄-공기 예혼합기의 연소특성에 관한 연구 (A Study on Combustion Characteristics of Pre-mixed $CH_4$-air by Flame Trap)

  • 김덕호;이재효;최수진;조규백;정동수
    • 한국자동차공학회논문집
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    • 제13권2호
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    • pp.22-28
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    • 2005
  • Exhaust gas emissions from internal combustion engines are one of the major sources of air pollution. And, it is extremely difficult to increase gasoline engine efficiency and to reduce $NO_X$ and PM(particulate matter) simultaneously in diesel combustion. This paper offers some basic concepts to overcome the above problems. To solve the problems, a recommended technique is CAI(controlled auto-ignition) combustion. In this paper, a flame trap was used to simulate internal EGR(exhaust gas recirculation) effect. An experimental study was carried out to find combustion characteristics using homogeneous premixed gas mixture in the constant volume combustion chamber(CVCC). Flame propagation photos and pressure signals were acquired to verify the flame trap effect. The flame trap creates high speed burned gas jet. It achieves higher flame propagation speed and more stable combustion due to the effect of geometry and burned gas jet.

밸브 거동 특성 파악을 위한 hole 센서의 적용에 관한 실험적 연구 (The Experimental Study on Characteristics of Valve System using Hole Type Valve Lift Sensor)

  • 문건필;이용규;이승진;최교남;정동수;박성영
    • 한국자동차공학회논문집
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    • 제16권3호
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    • pp.80-86
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    • 2008
  • Recently, controlled auto ignition(CAI) in gasoline engines are drawing more attentions due to its extremely low level of NOx emissions and potentials in lowering the fuel consumption rate. The one of the key techniques for realizing CAI combustion in engines is the control of valve system. Since the valve linkage system with higher complexity, or even earn-less valve systems, such as electro-hydraulic and electro-magnetic system, are adopted in CAI engines, it is not easy to estimate the valve lift profile from earn profiles. Therefore new measurement techniques for valve lift in CAI engines have been tried and tested. In this paper, hole type valve lift sensor was developed and tested to check the applicability in CAI engines. The valve lifts could be obtained from the sensor signal, which depends on the distance from the sensor to magnet attached to valve. Various engine speeds, ranging from 2,000 to 6,000 rpm, and valve lifts, maximum up to 9.7 mm, were tested. It was found that the sensor output for valve lift had accuracy of 98% in comparison with the basic specifications of valve lift through improvements of sensor driving circuit.