• 제목/요약/키워드: Intake and exhaust systems

검색결과 64건 처리시간 0.023초

흡배기계의 가스유동이 체적효율에 미치는 영향 (The effects of gas flow in intake and exhaust system on volumetric efficiency)

  • 조진호;김병수
    • 오토저널
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    • 제10권4호
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    • pp.57-65
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    • 1988
  • The study of unsteady gas exchange processes in the intake and exhaust systems of four-cylinder, four-stroke cycle internal combustion engine is described in this paper. The calculation model for the intake and exhaust systems is established and solved by the characteristic method for the equations defining these systems. A constant pressure theory is used for modeling branches of intake and exhaust manifolds. The relationship between the volumetric efficiency and the intake, exhaust pressure variation is clarified by simulation of these systems. It is found that the volumetric efficiency mainly depends on the intake pressure during the short period before the intake valves is closed, that the volumetric efficiency is influenced a little by intake chamber volume in the intake and exhaust system.

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GT-POWER를 이용한 SI 기관 흡·배기 계통의 모델링에 관한 연구 (Study on the Modeling of the Intake and Exhaust Systems of an SI Engine Using GT-POWER)

  • 김정석;윤건식;우석근
    • Journal of Advanced Marine Engineering and Technology
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    • 제35권6호
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    • pp.779-785
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    • 2011
  • 상용 성능 해석 소프트웨어인 GT-POWER를 이용하여 SI 기관의 흡 배기 계통에 관한 모델링을 시도하였다. 흡 배기 계통을 구성하는 주요 요소 중 플레넘 체임버, 배기 매니폴드 및 촉매변환기 각각에 대하여 적용 가능한 여러 모델을 적용하고 흡·배기 계통 주요 지점에서의 압력 변화 등을 측정하고 이를 계산 결과와 비교하여 각 모델의 적용 가능성을 검토하였다.

Measurement of Nonlinear Time-variant Source Characteristics of Intake and Exhaust Systems in Fluid Machines

  • Jang Seung-Ho;Ih Jeong-Guon
    • The Journal of the Acoustical Society of Korea
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    • 제24권3E호
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    • pp.87-89
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    • 2005
  • The acoustical sources of intake and exhaust systems in fluid machines are often characterized by the source impedance and strength using linear frequency-domain modeling. In the case of the sources which are nonlinear and time-variant, however, the source parameters were sometimes incorrectly obtained. In this paper, the source model and direct measurement technique are modified in order to evaluate the effect due to nonlinear and periodically time-varying source character as well as the linear property of the reflectivity of in-duct fluid machine source. With a priori known kinematical information of the source, the types of nonlinear time-variant terms can be presumed by a simple physical model, in which there is practically no restriction on the form of the model. The concept of source impedance can be extendable by introducing the linear frequency response function for each nonlinear or time-variant input. Extending the conventional method and adapting the reverse MISO technique, it is possible to develop a direct method that can deal with the nonlinear time-variant source parameters. The proposed direct method has a novel feature that there is no restriction on the probability or spectral natures of the excited sound pressure data. The present method is verified by the simulated measurements for simplified fluid machines. It is thought that the proposed method would be useful in predicting the insertion loss or the radiated sound level from intake or exhaust systems.

2기통 소형 터보가솔린엔진에서 배기 밸브 타이밍 제어에 따른 LIVC, EIVC 상태에서의 엔진 효율 영향 (Effect of Controlling Exhaust Valve Timing on Engine Efficiency in LIVC and EIVC States in a 2-Cylinder Small Turbo Gasoline Engine)

  • 장진영;우영민;신영진;고아현;정용진;조종표;김강출;표영덕;한명훈
    • 한국분무공학회지
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    • 제27권3호
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    • pp.117-125
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    • 2022
  • This study examines whether engine fuel efficiency is improved by optimization of the exhaust valve timing in a state where the intake valve timing has been optimized in a small turbo gasoline engine that has intake cams and exhaust cams with fixed valve opening periods. When the exhaust valve is opened late, the expansion stroke is longer, and the efficiency can be improved. A 2-cylinder turbo gasoline engine with 0.8 liters of displacement and an MPI (Multi Point Injection) fuel system was used. The engine was operated at 1,500 and 3,000 rpm, and the load conditions included a partial load of 50 N·m and a high load of 70 N·m. Data was recorded as the exhaust valve timing was controlled, and this was used to calculate the efficiency of combustion using a heat release, the fuel conversion efficiency, and the pumping loss. Results and the hydrocarbon concentrations in the exhaust gas were compared for each condition. Experiment results confirmed that additional fuel efficiency improvements are possible through exhaust valve timing control at 1,500 rpm and 50 N·m. However, in other operating conditions, fuel efficiency improvements could not be obtained through exhaust valve timing control because cases where the pumping loss and fuel/air mixture slip increased when the exhaust valve timing changed and the fuel efficiency declined.

전자제어 디젤엔진의 흡기 다기관 및 연료분사장치 정비에 따른 매연 배출특성에 관한 연구 (Study on the Characteristics of Exhaust Emissions in accordance with the Intake Manifold and Fuel Injector Maintenance of the Electronic Control Diesel Engine)

  • 강현준;김태중
    • 한국산학기술학회논문지
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    • 제17권9호
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    • pp.196-205
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    • 2016
  • 자동차로부터 배출되는 배기가스는 오존 및 미세먼지 등의 농도를 증가시켜 인체의 건강을 위협할 뿐만 아니라 지구 온난화 물질인 이산화탄소를 다량 배출하고 있어 지구 온난화에도 지대한 영향을 미치고 있다. 그래서 정부는 자동차에서 배출되는 배기가스를 효율적으로 규제하기 위한 제도로 운행차 배출가스 정밀검사 제도를 시행하고 있다. 자동차 배출가스를 줄이려는 연구는 다방면으로 이루어지고 있으며, 자동차의 배출가스 중 HC, NOx, $CO_2$ 등의 발생을 줄이기 위한 연구가 이루어지고 있다. 그러나 노후된 자동차에 대한 배출가스 저감에 대한 연구는 부족한 실정이다. 노후된 디젤자동차들이 운행차 배출가스 정밀검사를 만족하기 위해서는 흡기 다기관(manifold)과 인젝터의 카본퇴적물(Carbon sediment)을 세척하여 출력향상 및 배출가스 저감에 대한 연구가 필요하다. 따라서 본 연구에서는 차령 5년 이상, 주행거리 80,000 km 이상의 디젤자동차에 흡기 다기관 클리닝과 인젝터 클리닝을 동시에 수행하여 매연 발생에 미치는 영향을 비교 분석하였다. 실험결과, 흡기다기관 클리닝과 인젝터 클리닝을 동시 수행한 결과는 각각 수행한 결과보다 매연을 75.2% 감소시켰다. 또한, 흡기다기관 클리닝과 인젝터 클리닝을 동시 수행한 결과는 검사 후 8.5초부터 배출허용 기준 30%이하를 만족하였다.

승용디젤엔진 EGR 및 VGT 제어시스템의 동적특성을 고려한 Decoupler 설계 연구 (Dynamic Decoupler Design for EGR and VGT Systems in Passenger Car Diesel Engines)

  • 홍승우;박인석;손정원;선우명호
    • 한국자동차공학회논문집
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    • 제22권2호
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    • pp.182-189
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    • 2014
  • This paper proposes a decoupler design method to reduce interaction between exhaust gas recirculation (EGR) and variable geometry turbocharger (VGT) systems in passenger car diesel engines. The EGR valve and VGT vane are respectively used to control air-to-fuel ratio (AFR) of exhaust gas and intake pressure. A plant model for EGR and VGT systems is defined by a first order transfer function plus time-delay model, and the loop interaction between these systems is analyzed using a relative normalized gain array (RNGA) method. In order to deal with the loop interaction, a design method for simplified decoupler is applied to this study. Feedback control algorithms for AFR and intake pressure are composed of a compensator using PID control method and a prefilter. The proposed decoupler is evaluated through engine experiment, and the results successfully showed that the loop interaction between EGR and VGT systems can be reduced by using the proposed decoupler. Furthermore, it presents stable performance even off from the designed operating point.

4 행정 사이클 스파크 점화기관의 시뮬레이션에 관한 연구 (Study on the Simulation of the 4-Stroke Cycle Spark Ignition Engines(Second Paper))

  • 윤건식;윤영환;우석근;신승한;서문진
    • Journal of Advanced Marine Engineering and Technology
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    • 제27권2호
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    • pp.246-259
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    • 2003
  • For predicting the performances of the four stroke cycle spark ignition engines. the gas behavior in the engine system has been analyzed. The calculations consist of two parts. the calculation of the gas behavior in the intake and exhaust systems which was described in the first paper, and the calculation of the variations of gas properties inside the engine cylinders. In this Paper the simulations for the in-cylinder processes were described for the MPI engine, naturally aspirated and turbocharged engines with a carburettor. With the combination of the calculations of the intake and exhaust systems and the calculation of the in-cylinder processes. the predictions of the engine Performances and the exhaust emission characteristics were carried out. And the result showed good agrements with the experimental results under wide range of operating conditions.

BOOST를 이용한 가솔린 기관 흡·배기 계통의 시뮬레이션에 관한 연구 (Study on the Simulation of the Intake and Exhaust Systems of a Gasoline Engine Using BOOST)

  • 이대권;윤건식;류순필;우석근;성활경
    • 한국자동차공학회논문집
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    • 제21권4호
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    • pp.23-32
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    • 2013
  • This paper presents the simulation of the multi-cylinder 4-stroke cycle spark-ignition engine using a commercial simulation tool, AVL BOOST. Various models were examined to select the appropriate models that would best serve to analyze the main components of the intake and exhaust systems-the plenum chamber, the muffler and the exhaust manifold branch junction. For the plenum chamber and the muffler, the tank model and the pipe model were tested. In order to analyze the exhaust manifold branch junction, a complicated model which reflects the actual shape and involves pressure drops was compared to a simplified one. The results show that both the tank model and the pipe model are applicable with satisfying accuracies for the plenum chamber and the muffler. However, the tank model is more desirable in regards to convenience in modeling and efficiency in calculation. Though both the complicated model and the simplified model show satisfying accuracies for the exhaust manifold branch junction, the simplified model is recommended in regards to convenience in modeling and efficiency in calculation.

흡기유량에 따른 디젤엔진에서의 배출가스 특성에 대한 연구 (The Study on the Exhaust Emission Characteristics in Diesel Engine According to Intake Air Mass Flow)

  • 김형준;박용희;엄명도;고종민;황진우;이상현;길지훈;김정수
    • 한국분무공학회지
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    • 제18권1호
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    • pp.16-20
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    • 2013
  • The investigation was conducted to analyze the exhaust emission characteristics in diesel engine according to intake air mass flow. In this study, the test diesel engine with a 5,899 cubic centimeter displacement and power of the 260 ps was used to analyze the emission characteristics according to the intake air mass flow. In addition, the test modes were applied by the ND-13 and ETC mode. In order to analyze the emission characteristics, the engine dynamometer with 440 kW and emission gas analyzer (AMA-4000) were utilized. From the experimental results, it is revealed that the NOx and HC emissions in the intake air mass flow of large amount have high levels compared to those in the intake air mass flow of small amount in the ND-13 mode. However, the PM emission was shown the opposite trend in the NOx and HC emission due to the trade-off relation between the NOx and PM.

다기관 4사이클 스파크 점화기관의 가스 교환과정에 관한 예측 (Prediction on gas exchange process of a multi-cylinder 4-stroke cycle spark ignition engine)

  • 이병해;이재철;송준호
    • 오토저널
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    • 제13권2호
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    • pp.67-87
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    • 1991
  • The computer program which predicts the gas exchange process of multi-cylinder 4-Stroke cycle spark-ignition engine, can be great assistance for the design and development of new engine. In this study, the computer program was developed to predict the gas exchange process of multi-cylinder four stroke cycle spark ignition engine including intake and exhaust systems. When gas exchange process is to be calculated, the evaluation of the variation of the thermo-dynamic properties with time and position in the intake and exhaust systems is required. For the purpose, the application of the generalized method of characteristics to the gas exchange process is known as one of the method. The simulation model developed was investigated to the analysis of the branch system of multi-cylinder. The models used were the 2-zone expansion model and single zone model for in cylinder calculation and the generalized method of characteristic including area change, friction, heat transfer and entropy gradients for pipe flow calculation. The empirical constants reduced to least number as possible were determined through the comparison with the experimented indicator diagram of one particular operation condition and these constants were applied to other operating condition. The predicted pressures in cylinder were compared with the experimental results over the wide range of equivalence ratio and ignition timing. The predicted values have shown good agreement with the experimental results. The thermodynamic properties in the intake and exhaust system were predicted over the wide range of equivalence ratio and ignition timing. The obtained results can be summarized as follows. 1. Pressures in the exhaust manifold have a little influence on the equivalence ratio, a great influence on the ignition timing. 2. Pressures in the inlet manifold are nearly unchanged by the equivalence ratio and the ignition timing. 3. In this study, the behaviors of the exhaust temperature, gas in the exhaust manifold were ascertained.

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