• 제목/요약/키워드: EGR rate

검색결과 164건 처리시간 0.023초

저온연소조건에서 급속압축기를 이용한 n-heptane/n-butanol 혼합연료의 착화지연에 관한 연구 (The investigation on the Ignition Delay of n-heptane/n-butanol Blend Fuel using a Rapid Compression Machine at Low Temperature Combustion Regime)

  • 송재혁;강기중;;;최경민;김덕줄
    • 한국연소학회:학술대회논문집
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    • 한국연소학회 2013년도 제46회 KOSCO SYMPOSIUM 초록집
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    • pp.25-28
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    • 2013
  • This study presents both experimental and numerical investigation of ignition characteristics of n-heptane and n-butanol mixture. The $O_2$ concentration was fixed to 9-10% to make high exhaust gas recirculation(EGR) rate condition. Experiments were performed using a rapid compression machine. In addition, a numerical study of the ignition delay time was performed using CHEMKIN codes to validate experimental results and predict chemical species after combustion process. The results showed that the ignition delay time increased with increasing n-butanol ratio and the reactivity decreased by low $O_2$ concentration.

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파일럿 분사가 저온 디젤 연소에 미치는 영향 (Effects of Pilot Injection on Low Temperature Diesel Combustion)

  • 한상욱;배충식
    • 한국자동차공학회논문집
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    • 제20권3호
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    • pp.141-147
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    • 2012
  • A direct injection diesel engine with large amount of exhaust gas recirculation was used to investigate low temperature diesel combustion. Pilot injection strategy was adopted in low temperature diesel combustion to reduce high carbon monoxide and hydrocarbon emissions. Combustion characteristics and exhaust emissions of low temperature diesel combustion under different pilot injection timings, pilot injection quantities and injection pressures were analyzed. Retarding pilot injection timing, increasing pilot injection quantity and higher injection pressure advanced main combustion timing and increased peak heat release rate of main combustion. As a result of these strategies, carbon monoxide and hydrocarbon emissions were reduced. Soot emission was slightly increased with retarded pilot injection timing while the effect of pilot injection on nitrogen oxides emission was negligible under low combustion temperature condition. Spatial distribution of fuel from the spray targeting visualization was also investigated to provide more insight into the reason for the reduction in carbon monoxide and hydrocarbon emissions.

저온 디젤 연소에서 T90 온도가 배기가스에 미치는 영향 (The Effect of T90 Temperature on Exhaust Emissions in Low-temperature Diesel Combustion)

  • 한만배
    • 한국자동차공학회논문집
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    • 제19권4호
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    • pp.72-77
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    • 2011
  • This study is to investigate the effect of the distillation temperature in ultra low sulfur diesel fuel on exhaust emissions in the low-temperature diesel combustion with 1.9L common rail direct injection diesel engine. Low temperature diesel combustion was achieved by adopting an external high EGR rate with a strategic injection control. The engine was operated at 1500 rpm 2.6 bar BMEP. The 90% distillation recovery temperature (T90) was $270^{\circ}C$ and $340^{\circ}C$ for the respective cetane number (CN) 30 and 55. It was found that there exists no distinctive discrepancy on exhaust emissions with regards to the different T90s. The high CN (CN55) fuels follow the similar trend of exhaust emissions as observed in CN30 fuels' except that high T90 fuel (CN55-T340) produced higher PM compared to low T90 fuel (CN55-T270). This may come from that high T90 plays an active role in aggravating the degree of fuel-air mixture preparedness before ignition.

상세화학반응식을 이용한 HCCI 엔진의 성능 해석기법 연구 (A Cycle Simulation Method for an HCCI Engine using Detailed Chemical Kinetics)

  • 송봉하;김동광;조남효
    • 한국자동차공학회논문집
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    • 제11권6호
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    • pp.51-58
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    • 2003
  • A cycle simulation method is developed by coupling a commercial code, Ricardo's WAVE, with the SENKIN code from CHEMKIN packages to predict combustion characteristics of an HCCI engine. By solving detailed chemical kinetics the SENKIN code calculates the combustion products in the combustion chamber during the valve closing period, i.e. from IVC to EVO. Except the combustion chamber during the valve closing period the WAVE code solves thermodynamic status in the whole engine system. The cycle simulation of the complete engine system is made possible by exchanging the numerical solutions between the codes on the coupling positions of the intake port at IVC and of the exhaust port at EVO. This method is validated against the available experimental data from recent literatures. Auto ignition timing and cylinder pressure are well predicted for various engine operating conditions including a very high ECR rate although it shows a trend of sharp increase in cylinder pressure immediate after auto ignition. This trend is overpredicted especially for EGR cases, which may be due to the assumption of single-zone combustion model and the limit of the chemical kinetic model for the prediction of turbulent air-fuel mixing phenomena. A further work would be needed for the implementation of a multi-zone combustion model and the effect of turbulent mixing into the method.

Euro-6 대응 경유 차량의 NOx 저감율 분석 연구 (Research on the NOx Reduction Rate of Diesel Vehicle for Euro-6)

  • 강민경;권석주;서영호
    • 융복합기술연구소 논문집
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    • 제7권1호
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    • pp.15-18
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    • 2017
  • As emission gas regulation of deisel vehicles is strengthened to Euro-6, It becomes difficult to deal with NOx regulated value mainly by EGR without additional after-treatment system. In addition, RDE(Real Driving Emissions) test will be introduced after september 2017. Therefore, It is essential to develop the after-treatment of diesel vehicles which reduce NOx emissions. It is possible to use DOC, DPF, LNT or DOC, DPF and SCR as a after-treatment system for reducing NOx. However, It is expected that the SCR will be applied widely because LNT alone does not have sufficient NOx purification efficiency. In this study, It tried to analyze the efficiency of reducing NOx emissions during the mode test by attaching a NOx sensor to test vehicle. As a result, It was confirmed that NOx emissions was significantly reduce through the after-treatment system from engine. And the NOx reduction efficiency of SCR was about 4.5 times better than DOC, DPF.

경유-천연가스 이종연료 엔진의 저부하 영역에서 혼합기 형성을 통한 배기배출 저감 (Emission Reduction by Mixture Formation in a Diesel-Natural Gas Dual-Fuel Engine at Low Loads)

  • 박현욱;이준순;오승묵;김창업;이용규;배충식
    • 한국분무공학회지
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    • 제24권4호
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    • pp.194-202
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    • 2019
  • A mixture preparation strategy was proposed and evaluated in a diesel-natural gas dual-fuel engine to reduce hydrocarbon (HC) and carbon monoxide (CO) emissions under low load conditions. An experimental investigation was conducted in a single-cylinder compression-ignition engine. Natural gas was supplied with air during the intake stroke, and diesel was injected directly into the combustion chamber during the compression stroke. First, effects of diesel start of energizing (SOE) and natural gas substitution ratio on the combustion and exhaust gas emissions were analyzed. Based on the results, the mixture preparation strategy was established. A low natural gas substitution ratio and a high exhaust gas recirculation (EGR) rate were effective in reducing the HC and CO emissions.

즉석섭취 샌드위치에서의 Staphylococcus aureus 성장예측모델 개발 (Development of a Predictive Model Describing the Growth of Staphylococcus aureus in Ready-to-Eat Sandwiches)

  • 박해정;배현주
    • 급식외식위생학회지
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    • 제2권2호
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    • pp.91-96
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    • 2021
  • This study was performed to provide fundamental data on hygiene and quality control of ready-to-eat sandwiches. Predictive models were developed to the kinetics of Staphylococcus aureus growth in these sandwiches as a function of temperature (10, 15, 25, and 35℃). The result of the primary model that used the Gompertz equation showed that the lag phase duration (LPD) and generation time (GT) decreased and the exponential growth rate (EGR) increased with increasing storage temperature. The secondary model showed an R2 for M and B of 0.9967 and 09916, respectively. A predictive growth model of the growth degree as a function of temperature was developed. L(t)=A+Cexp(-exp(-B(t-M))) (A=Initial contamination level, C=MPD-A, B=0.473166-0.045040*Temp-0.001718*Temp*Temp, M=19.924824-0.627442*Temp-0.004493*Temp*Temp, t=time, Temp=temperature). This model showed an R2 value of 0.9288. All the models developed in this study showed a good fit.

하천범람과 내수침수의 개별적·복합적 고려에 따른 흐름 특성의 수치적 비교 (Numerical Comparisons of Flow Properties Between Indivisual and Comprehensive Consideration of River Inundation and Inland Flooding)

  • 최상도;엄태수;신은택;송창근
    • 융합정보논문지
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    • 제10권10호
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    • pp.115-122
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    • 2020
  • 기후변화에 의해 전례없는 폭우가 빈번하게 내려 도심지에서는 인명 및 재산 손실 등의 침수피해를 반복적으로 겪고 있다. 도심지 침수의 두가지 주요 인자는 하천범람과 내수침수이다. 그러나, 기존 대부분의 연구에서는 침수의 두가지 주요 인자에 의한 복합적인 기작을 무시하고 각 결과를 단순 선형합으로 침수 영향을 산정하여 부정확한 결과를 도출하였다. 본 연구에서는 내수침수와 하천범람을 동시에 모의하여 분석하였다. 하천범람 해석을 위해 Petrov 안정화 기법을 적용하여 충격파의 전달을 정확하게 포착할 수 있도록 하였으며, Flux-blocking 알고리즘을 탑재하여 마름/젖음을 안정적으로 모의하였다. 또한 EGR 기법에 의한 생성/소멸항을 천수방정식에 추가하여 내수침수 해석 모듈을 반영하였다. 내수침수와 하천범람을 동시에 모의하는 경우 침수와 범람에 의한 흐름의 상쇄효과와 중첩효과를 보다 정밀하게 반영할 수 있으므로, 개별합으로 산정한 결과에 비해 정확한 결과를 도출할 수 있었다.

직접분사식 디젤엔진에서 아산화질소의 생성에 관한 실험적 연구 (A Experimental Study on Nitrous Oxide Formation in Direct Injection Diesel Engine)

  • 유동훈
    • 해양환경안전학회지
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    • 제21권2호
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    • pp.188-193
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    • 2015
  • 일반적으로 선박용 디젤엔진의 아산화질소($N_2O$)배출률은 이산화황($SO_2$)배출률과 밀접한 상관성을 갖고 있고, 선박에서 사용되는 연료의 다양성은 $N_2O$배출특성에 영향을 미친다고 받아들여져 왔다. 최근의 연구보고에 의하면 연료 연소에서 발생한 충분한 일산화질소(NO)가 존재할 경우, 배기의 $SO_2$배출률이 $N_2O$생성에 미치는 영향은 NO의 영향보다 막대하게 크다. 그러므로 $SO_2$성분으로부터 기인하는 $N_2O$생성은 NOx저감을 위한 배기가스 재순환(EGR) 시스템에서 중요한 인자로 작용한다. 본 실험적인 연구의 목적은 $SO_2$유량 증가를 갖는 디젤엔진의 흡기가 배기의 $N_2O$배출률에 미치는 영향에 대하여 조사하는 것이다. 실험에 사용된 테스트 엔진은 2600rpm에서 12kW의 출력을 갖는 4행정 직접분사식 디젤엔진이고, 운전조건은 75% 부하에서 실시되었다. 0.499%($m^3/m^3$)의 $SO_2$표준가스는 흡기의 $SO_2$농도를 변화시키기 위해 사용되었다. 결과적으로 황 성분을 포함하지 않는 연료는 $SO_2$를 배출시키지 않았고, 흡기 중에 $SO_2$표준가스의 증가에 따른 배기의 $SO_2$배출률은 $SO_2$흡입률과 비교하여 거의 같은 비율이었다. 또한, 흡기의 $SO_2$유량 상승은 $N_2O$배출률을 상승시켜 배기 중의 $N_2O$는 흡기의 $SO_2$혼합기에 의해 생성되었다. 결국 황 성분을 함유한 연료는 연소 중에 $SO_2$를 형성하고 배기 중의 $N_2O$는 연소실에 존재하는 NO와 $SO_2$의 반응에 의해 발생된다고 할 수 있다.

분사기 형상 변경을 통한 저온 디젤 연소의 배기 배출물 저감 (Reduction of Exhaust Emissions Using Various Injector Configurations in Low Temperature Diesel Combustion)

  • 정용진;장진영;박정서;배충식;김득상
    • 한국자동차공학회논문집
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    • 제19권4호
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    • pp.16-23
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    • 2011
  • Low temperature combustion is one of the advanced combustion technology in an internal combustion engine to reduce soot and nitrogen oxides simultaneously. In present experiment three kinds of injector were used to investigate the influence of injection angle and number of nozzle holes on the low temperature combustion in a heavy duty diesel engine. Low temperature diesel combustion is realized from the exhaust gas recirculation rate of 60%. Indicated mean effective pressure of low temperature combustion corresponds to the 70% level of conventional diesel engine combustion. Reduction of hydrocarbon and carbon monoxide, which are produced in low temperature combustion because of the low combustion temperature and a deficit of oxygen, was achieved by using various injector configuration. The result of experiment with $100^{\circ}$ injection angle and 8 holes showed that reductions in hydrocarbon and carbon monoxide could be achieved 58% and 27% respectively maintaining the 7% increased indicated mean effective pressure in low temperature diesel combustion compared with conventional injector.