• 제목/요약/키워드: Exhaust-gas Pressure

검색결과 497건 처리시간 0.026초

저압 SCR을 위한 디젤발전기 배기가스 온도 변화 (Temperature Variation of Exhaust Gas in Diesel Generator for Low Pressure SCR)

  • 홍철현;이창민;이상득
    • 해양환경안전학회지
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    • 제27권2호
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    • pp.355-362
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    • 2021
  • L.P SCR의 촉매 반응을 위해 선박의 발전기용 4행정 디젤엔진의 배기가스 온도를 높게 설계 할 수밖에 없었다. 본 연구의 목적은 밸브개폐시기와 연료분사시기를 조정을 통한 배기가스의 온도 감소가 L.P SCR의 운전조건을 만족시키고 고온으로 인한 발전기 엔진의 사고를 예방하기 위함이었다. 배기가스 온도를 하강시키기 위해 캠샤프트의 각도를 조정하고 연료분사펌프의 Shim을 추가하였다. 그 결과 최대폭발압력은 12.8 bar 증가하였고 터보차저 출구온도 평균값은 13.3 ℃ 하강하였다. 터보차저 출구에서 SCR 입구까지의 열손실을 감안하더라도 L.P SCR 운전조건인 SCR 챔버 입구 온도인 290 ℃를 만족하였다. 배기가스 온도 하강을 통해 디젤발전기의 안전운전이 가능하게 한 연구였다.

자동차 배기계의 압력파 전파특성에 관한 연구 (A Study on the Characteristics of Pressure Wave Propagation in Automotive Exhaust System)

  • 차경옥;이준서;김형섭
    • 한국자동차공학회논문집
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    • 제4권4호
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    • pp.18-26
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    • 1996
  • Based on experimental analysis, the characteristics of pulsating pressure wave propagation is clarified by testing of 4-stroke gasoline engine. The pulsating pressure wave in exhaust system is generated by pulsating gas flow due to working of exhaust valve. The pulsating pressure wave is closely concerned to the loss of engine power according to back pressure and exhaust noise. It is difficult to exactly calculate pulsating pressure wave propagation in exhaust system because of nonlinear effect. Therefore, in the first step for solving these problems, this paper contains experimental model and analysis method which are applied two-port network analysis. Also, it shows coherence function, frequency response function, back pressure, and gradient of temperature in exhaust system.

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Design of gas suspension absorber to improve desulfurization efficiency

  • Hwang, Woohyeon;Lee, Kyung-Ok
    • 한국컴퓨터정보학회논문지
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    • 제25권2호
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    • pp.189-195
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    • 2020
  • 본 연구에서는 배기가스가 흡수탑으로 균일하게 유입될 수 있도록 가스 부유식 흡수탑의 입구덕트와 안내깃을 다시 설계하여 탈황효율을 높이고자 한다. 산업용 보일러에서 대기오염 물질의 주 발생원인 중에서 황산화물의 오염물질을 저감하기 위해 기존의 장치를 다시 설계하여 해결하고자 한다. 이를 위하여 가스 부유식 흡수탑 내부에서 배기가스 중에 SOx 성분의 제거효율을 높일 수 있도록 배기가스, 슬러리와 재순환 흡착제가 균일하게 접촉하도록 변경한다. 그리고 보일러 출구에서부터 가스 부유식 흡수탑 출구까지 압력손실에 대한 초기 설계값과 CFD 값을 비교하여 검증한다. 또한 배기가스의 속도분포, 재순환 흡착제 농도분포, 액상 슬러리 거동, 압력손실을 각각 비교하였다. 그 결과는 보일러 출구에서부터 흡수탑 출구까지 압력손실이 감소하고, 배기가스의 편향이 최소화되므로 인해 탈황 효율이 개선되었음을 확인하였다.

디젤기관의 흡.배기관 맥동류가 체적효율에 미치는 영향 (The Effect of Intake and Exhaust Pulsating Flow on the Volumetric Efficiency in a Diesel Engine)

  • 이상득;강희영;고대권;안수길
    • 동력기계공학회지
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    • 제10권3호
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    • pp.11-16
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    • 2006
  • The pressure fluctuation in the intake and exhaust pipe of 4 stroke-cycle diesel engine is caused by reciprocating motion of piston for suction of fresh air and exhaust of burned gas. this gas dynamic effect can be utilized for increase the volumetric efficiency. Many empirical studies have been carried out to investigate the effects of intake pulsating flow on the volumetric efficiency. However, when the gas dynamic effects are utilized for the variable speed engine to increase its performance, The speed range in which the maximum volumetric efficiency is limited and there occurs some difficulties in lay-out of intake system because it become too long. During induction process, as waves travel both directions, they are reflected and interacted each other and pressure waves are transmitted through it. Hence, the flow becomes more complex and unsteady flow. These pressure waves act upon intake pulsating flow and affects on the volumetric efficiency. In this paper the effects of pulsating flow of intake and exhaust pipes on volumetric efficiency were examined and evaluated. It was found that volumetric efficiency was affected by pulsating flow of intake and exhaust pipes.

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특성곡선법을 이용한 디젤엔진 가스유동 1차원 수치해석의 타당성 평가 (Validation of diesel engine gas flow one-dimensional numerical analysis using the method of characteristics)

  • 김경현;공경주
    • 수산해양기술연구
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    • 제56권3호
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    • pp.230-237
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    • 2020
  • In order to design a diesel engine system and predict its performance, it is necessary to analyze the gas flow of the intake and exhaust system. A gas flow analysis in three-dimensional (3D) format needs a high-resolution workstation and enormous time for analysis. Therefore, the method of characteristics (MOC) was used for a gas flow analysis with a fast calculation time and a low-resolution workstation. An experiment was conducted on a single cylinder diesel engine to measure pressure in cylinder, intake pipe and exhaust pipe. The one-dimensional (1D) gas flow was analyzed under the same conditions as the experiment. The engine speed, valve timing and compression ratio were the same conditions and the intake pressure was inputted as the experimental results. Bent pipe such as an exhaust port that cannot be realized in 1D was omitted. As results of validation, the cylinder pressure showed accuracy, but the exhaust pipe pressure exhibited inaccuracy. This is considered as an error caused by the failure to implement a bent pipe such as an exhaust port. When analyzed in 3D, calculation time required 61 hours more based on a model of this study. In the future, we intend to implement a bent pipe that cannot be realized in 1D using 3D and prepare a method to supplement reliability by using 1D-3D coupling.

양단자 회로망 분석을 이용한 기관배기계의 압력파 전달특성에 관한 연구 (A study of the transfer characteristics of pressure waves using two-port network analysis in exhaust system of engine)

  • 이준서;유병구;차경옥
    • Journal of Advanced Marine Engineering and Technology
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    • 제22권1호
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    • pp.77-84
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    • 1998
  • Based on experimental analysis, the characteristics of pulsating pressure wave propagation is clarified by testing of 4-stroke gasoline engine. The pulsating pressure wave in exhaust system is generated by pulsating gas flow due to working of exhaust valve. The pulsating pressure wave is closely concerned to the loss of engine power according to back pressure and exhaust noise. It is difficult to exactly calculate pulsating pressure wave propagation in exhaust system because of nonlinear effect. Therefore, in the first step for solving these problems, this paper contains experimental model and analysis method which are applied two-port network analysis. Also, it shows coherence function, frequency response function, back pressure, and gradient of temperature in exhaust system.

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커먼레일 디젤엔진에서 후분사 변화가 배출가스 성분 및 온도 변화에 미치는 영향에 대한 실험적 연구 (The experimental study of post injection effect on exhaust gas temperature and composition in a common rail DI diesel engine)

  • 정재욱;장동훈;박정규;전광민
    • 한국분무공학회지
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    • 제9권1호
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    • pp.15-20
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    • 2004
  • The post injection effect to enhance aftertreatment devices' performance is essential to meet future stringent emission standards by controlling exhaust gas temperature and emission pollutants. The test has been made with commercial common rail diesel engine by post injection manipulation, to optimize exhaust gas temperature while guarantee low fuel penalty. The optimization was done at 1500, 2000 and 2500[rpm] for 2, 4[bar] condition which show low exhaust gas temperature. The main purpose of this test is dedicated to understand mechanism of exhaust gas temperature rise while optimizing

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압축천연가스기관에서 부스트압력 변화에 따른 성능 및 배출가스에 관한 실험적 연구 (An Experimental Study on Performance & Exhaust Emission by Boost pressure Change in Compressed Natural Gas Engine)

  • 오용석
    • 한국생산제조학회지
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    • 제9권1호
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    • pp.53-59
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    • 2000
  • Recently air pollution is increased according to increase of vehicle. So many countries are studying about compressed natural gas engine. Research on the development of CNG dedicated engine that has important meaning both as a clean fuel and an alterna-tive energy to reduce the exhaust emission from diesel engine are actively going on these days. In this study the character-istics of CNG engine was investigated and the engine performance experimented by changing the parameters such as boost pressure. The CNG engine performance and exhaust emission were measured by engine performance mode at maximum load condition with increasing the rpm in the range of 1,000-2,200rpm. The exhaust emission was also measured at D-13 mode and compared to the emission regulation.

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소음기내의 정상상태 및 맥동파 배기가스 유입에 의한 유동특성에 관한 연구 (A Study on the Flow Characteristics of Steady State and Pressure Variation inside the Mulffler with the Inflow of Pulsating Exhaust Gas)

  • 김민호;정우인;천인범
    • 한국자동차공학회논문집
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    • 제7권8호
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    • pp.150-159
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    • 1999
  • Exhaust system is composed of several parts. Among, them , design of muffler system strongly influences on engine efficiency and noise reduction. So , through comprehension of flow characteristics inside muffler is necessary . In this study , three-dimensional steady and unsteady compressible flow analysis was performed to understand the flow characteristics, pressure loss and amplitude variation of pulsating pressure. The computational grid generation was carried out using commercial preprocessor ICEM CFD/CAE. And the three-dimensional fluid motion inside the muffler was analyzed by STAR-CD, the computational fluid dynamics code. RNG k-$\varepsilon$ tubulence model was applied to consider the complexity of the geometry and fluid motion. The steady and unsteady flow field inside muffler such as velocity distribution, pulsating pressure and pressure loss was examined. In case of unsteady state analysis, velocity of inlet region was converted from measured pulsating pressure. Experimental measurement of pressure and temperature was carried out to provide the boundary and initial condition for computational study under three engine operating conditions. As a result of this study, we could identify the flow characteristics inside the muffler and obtain the pressure loss, amplitude variation of pulsating exhaust gas.

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점화기관 배기계의 압력과 전파특성에 관한 연구 (A Study on the Characteristics of Pressure Wave Propagation in Spark Ignition Engine Exhaust System)

  • 박진용
    • 한국공작기계학회:학술대회논문집
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    • 한국공작기계학회 1996년도 춘계학술대회 논문집
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    • pp.72-78
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    • 1996
  • Based on experimental analysis, the characteristics of pulsating pressure wave propagation is clarified by testing of 4-stroke gasoline engine. The pulsating pressure wave in exhaust system is generated gyulsating gas flow due the working of exhaust valve. The pulsating pressure wave is closely concerned to the loss of engine power according to back pressure and exhaust noise. It is difficult to exactly calculate pulsating pressure wave nonlinear effect. Therefore, in the first step for solving these problems, this paper contains experimental model and analysis method which are applied two-port network analysis. Also, it shows coherence function, frequency response function. back pressure, and gradient of temperature in exhaust system.

  • PDF