• 제목/요약/키워드: EGR2

검색결과 192건 처리시간 0.032초

6 L급 압축착화 기관에서 천연가스-디젤 반응성 조정 연소 시 부하에 따른 배기 재순환율이 출력 및 열효율에 미치는 영향 분석 (Effects of Exhaust Gas Recirculation on Power and Thermal Efficiency of Reactivity Controlled Compression Ignition in Different Load Conditions with a 6-L Engine)

  • 이선엽;이석환;김창기;이정우
    • 한국가스학회지
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    • 제24권6호
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    • pp.1-10
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    • 2020
  • 반응성 조정 압축착화 (Reactivity Controlled Compression Ignition, RCCI) 연소는 착화원인 디젤 연료를 압축 행정 중 이른 시점에 미리 분사하여, 공기와 미리 섞여 들어온 천연가스 연료뿐만 아니라 디젤 연료 자체도 미리 연소 전에 공기와 혼합하여 착화를 이루는 전체 예혼합 혼소(Dual-fuel combustion) 방식의 일종이다. 따라서 기존의 혼소 방식 중에서도 RCCI 연소는 질소산화물(Nitrogen Oxides, NOx) 및 매연(Smoke)을 획기적으로 줄일 수 있고, 또한 높은 열효율을 유지할 수 있는 장점을 지니고 있다. 특히 연소 중 NOx의 발생은 연소 온도와 국부적인 당량비에 관계된 상황에서 당량비를 낮추기 위해 예혼합율을 높이는 시도뿐만 아니라, 연소 온도 감소를 위한 배기재순환(Exhuast Gas Recirculation, EGR)을 적용하는 것이 효과적이다. 그러나 배기재순환은 대개의 경우 터보차저의 압축기 전단에서 추출하는 HP-EGR(High Pressure-EGR) 방식을 적용하는 경우가 많으므로, EGR율을 높일 경우 터빈으로 공급되는 배기의 양이 줄어 배기 엔탈피 감소로 인해 과급이 줄어드는 악영향을 초래할 수 있다. 따라서 본 연구에서는 서로 다른 두 운전조건에서 천연가스-디젤 RCCI 연소를 시행할 때, EGR율 변화에 따른 엔진 시스템의 제동 출력 및 열효율의 변화에 대하여 실험적으로 분석하였다. 실험 조건은 1,200 rpm/29 kW 수준의 조건과 1,800 rpm/90 kW 이하 조건에서 수행하였으며 NOx와 smoke의 배출조건은 Tier-4 final 배기규제를 기준으로 삼았으며 엔진의 내구성을 고려하여 최고 연소압력은 160 bar를 넘지 않게 제어하였다. 그 결과 1,200 rpm/29 kW 조건에서는 EGR율을 4에서 30 %로 높이더라도 출력 및 열효율의 변화는 미미하였으나, 1,800 rpm 조건에서는 EGR율을 4에서 28 %로 증가할 경우 최대 과급 압력이 2.3에서 1.8 bar로, 최고 출력은 90에서 65 kW로, 열효율은 37에서 33 %로 감소함을 알 수 있었다. 따라서 효과적인 EGR공급을 위해서는 현재 압축기 전단에서 추출하는 EGR을 후단에서 추출하는 LP-EGR (Low Pressure EGR) 시스템이 효과적일 수 있음을 시사한다.

스파아크 점화기관의 사이클 시뮬레이션과 실험적 방법에 의한 성능, 배출가스, EGR효과의 예측에 관한 연구 (The prediction of performance, exhaust emissions and EGR effect of a spark ignition engine by cycle simmulation and experimental method)

  • 정용일;성낙원
    • 오토저널
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    • 제8권2호
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    • pp.31-42
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    • 1986
  • The prediction of performance, exhaust emissions and EGR effect is made by the SI engine cycle simulation. In this simulation several models are employed - two zome, thermodynamic combustion, mass fraction burned, heat transfer, chemical equilibrium, chemical kinetics for NOx, laminar flame speed for ignition delay. The chemical species in burned gas considered are 13 species-CO$_{2}$, CO, $O_{2}$, H$_{2}$O, H$_{2}$,OH, H, O, N$_{2}$, NO$_{2}$, N, Ar - and the cylinder pressure, burned and unburned zone temperature and composition of gas are calculated at each crank angle through the compression, ignition delay, combustion and expansion process. To check the validity of the model, experimental study is done for measuring emissions, combustion pressure and engine output. The predicted values for pressure and emissions show qualitative agreement with the measured data and the EGR effect also shows similar tendency.

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EGR 및 예혼합 정도가 메탄/공기 화염의 NO 생성에 미치는 영향 (Effects of EGR and Premixedness on NO Formation of Methane/Air Flames)

  • 이원남;이웅재
    • 한국연소학회지
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    • 제4권2호
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    • pp.63-74
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    • 1999
  • The effects of EGR and premixedness on NO formation have been numerically investigated. The flame structure is classified into three categories; premixed flame($=1)$, rich/lean premixed flame(${\alpha}=0.6$ and 0.8) and diffusion flame(${\alpha}=0$). NO formation/destruction mechanisms are assorted to thermal, reburn and Fenimore mechanisms. The temperature of unburned gas is arranged to 298 and 500 K to have access to the condition in a real internal combustion engine. The results show that all three NO formation/destruction reaction rates in the fuel rich flame zone could be decreased by EGR for rich/lean premixed flames, while those in the fuel lean flame zone are not significantly changed. Near the stagnation plane, however, only the thermal NO reaction rate is decreased. The contribution of reburn and Fenimore mechanisms for the net NO production becomes less significant as the premixedness of a flame increases. The larger amount of NO reduction with EGR is expected under the higher temperature and/or higher fuel/air premixedness conditions due to the increased contribution of the thermal mechanism. The role of Fenimore and reburn mechanisms could be important for rich premixed and diffusion flames; therefore, the effect of EGR on NO reduction could vary with fuel/air premixedness. The premixedness of a partially premixed flame changes the flame structure and could affect the NO production characteristics.

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Scrubber를 장착한 EGR 시스템이 디젤기관의 성능특성에 미치는 영향 (Effects on Performance Characteristics of Diesel Engine by EGR system with Scrubber)

  • 임재근
    • Journal of Advanced Marine Engineering and Technology
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    • 제23권2호
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    • pp.184-191
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    • 1999
  • Th effects of exhaust gas recirculation(EGR) on the characteristics of combustion exhaust emissions and specific fuel consumption(SFC) are experimentally investigated by four-cylin-der four-cycle and direct injection marine diesel engine. In order to reduce soot contents in the recirculated exhaust gas to intake system of the engines a novel diesel soot removal system with a cylinder-type scrubber which has water injector(4 nozzles in 1.0mm diameter)is specially designed and manufactured for the experi-mental system. The obtained results are as follows; The combustion pressure in cylinder is decreased and ignition is delayed with increasing EGR rate. The accumulated quantity of heat release is slightly decreased and the tendency of heat release rate is not constant. NOx and Soot emissions are decreased by maximum 7% and 540% with scrubber tan without scrubber in the range of experimental conditions. Those are increased at the lean burn area with increasing equivalence ration in the constant value of engine speed and EGR rate. Also those are decreased with increasing EGR rate in the constant value of engine speed and equivalence ratio.

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SECFR 시스템의 차량적용을 위한 분무균일도향상에 관한 연구 (A Study for Improving Spray Uniformity of the SECFR System for Vehicle Applications)

  • 손정욱;우승철;김수겸;이기형
    • 한국분무공학회지
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    • 제20권2호
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    • pp.95-100
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    • 2015
  • Lower recirculated gas temperature at EGR system reduces NOx and PM emissions. However, EGR Cooler can be polluted by PM generated from recirculated EGR gas, and it reduces cooling efficiency and the amount of EGR gas simultaneously. The SECFR(Steam EGR Cooler Fouling Remover) system which uses the evaporated washer fluid steam caused by high temperature of EGR gas was manufactured for removing fouling generated on the cooler surface. Since an injection pressure of wind shield washer fluid in the vehicle is approximately 0.5 bar, it is not enough to atomize the injected washer fluid. Thus, it is necessary to apply a method to atomize the washer fluid. In this study, the impinging plate was used to promote the atomization of spray washer fluid for the purpose of apply SECFR system to vehicles and measured the DAR(Droplet Area Ratio) and DUI(Droplet Uniformity Index) through the spray visualization.

가솔린 엔진에서 합성가스 첨가량에 따른 EGR 효과에 대한 연구 (A Study on the Effects of EGR with Syngas Addition in a Gasoline Engine)

  • 윤영준;최영;강건용
    • 한국자동차공학회논문집
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    • 제15권6호
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    • pp.159-164
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    • 2007
  • The purpose of this study is to reduce harmful emission gases in the range of stable combustion without loss of a thermal efficiency. Therefore, effects of both exhaust gas recirculation(EGR) and synthetic gas addition on engine performance and emission were investigated in a gasoline engine. Synthetic gas(syngas), which is in general prepared from reforming gasoline, was utilized in order to promote stable combustion. The major components of syngas are H2, CO and $N_2$ gases. The percentage of syngas addition was changed from 0 to 30% in energy fraction and EGR rate was varied up to 30%. As a result, $COV_{IMEP}$ as a parameter of combustion stability was decreased and THC/$NO_X$ emissions were reduced with the increase of syngas addition. And $COV_{IMEP}$ was increased with the increase of EGR but $NO_X$ emission was greatly reduced. In addition, under the region where the EGR rate is around 20%, thermal efficiency was improved.

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.

터보 인터쿨러 커먼레일 디젤기관의 매연, CO 및 $CO_2$ 배출물에 미치는 플라즈마 EGR 조합시스템의 영향에 관한 연구 (A Study on Effect of a Combined Plasma EGR System upon Soot CO and $CO_2$ Emissions in Turbo Intercooler Common-rail Diesel Engines)

  • 배명환;구영진;이봉섭;윤일중
    • 한국자동차공학회논문집
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    • 제14권4호
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    • pp.1-11
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    • 2006
  • The aim in this study is to develop the combined EGR system with a non-thermal plasma reactor for reducing exhaust emissions and improving fuel economy in turbo intercooler ECU common-rail diesel engines. In this study, the characteristics of soot, CO and $CO_2$ emissions under four kinds of engine loads are experimentally investigated by using a four-cycle, four-cylinder, direct injection type, water-cooled turbo intercooler ECU common-rail diesel engine with a combined plasma exhaust gas recirculation(EGR) system operating at three kinds of engine speeds. The EGR and non-thermal plasma reactor system are used to reduce $NO_x$ emissions, and the non-thermal plasma reactor and turbo intercooler system are used to reduce soot and THC emissions. The plasma system is a flat-to-flat type reactor operated by a plasma power supply. The fuel is sprayed by pilot and main injections at the variable injection timing between BTDC $15^{\circ}$ and ATDC $1^{\circ}$ according to experimental conditions. It is found that soot emissions with increasing EGR rate are increased, but are decreased as the applied electrical voltage of the non-thermal plasma reactor is elevated at the same engine speed and load. Results also show that CO and $CO_2$ emissions are increased as EGR rate is elevated, and CO emissions are increased, but $CO_2$ emissions are decreased as the applied electrical voltage of the non-thermal plasma reactor is elevated at the same engine speed and load.

연료소비율 개선을 위한 고압/저압 배기재순환 시스템 구축 및 저온연소 엔진의 운전전략 수립 (Establishing HP/LP-EGR System and Founding Operating Strategy of Low Temperature Combustion Engine to Improve Fuel Consumption)

  • 신승협;한영덕;심의준;김득상
    • 한국자동차공학회논문집
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    • 제22권3호
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    • pp.81-89
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    • 2014
  • This study researched on the effect of HP/LP-EGR system to improve fuel consumption of Low Temperature Combustion Engine. Firstly, low temperature combustion engine with HP/LP-EGR system was established using 6.0L wastegate turbocharger HDDI engine. And suppliable EGR rate of the engine was proven to be enough to realize stable low temperature combustion. Then, optimum operating strategy was founded to develop fuel consumption of the engine. Control parameters were HP/LP-EGR valve and IPCV(Intake Pressure Control Valve) duty. Experiments method was that characteristics of the engine were measured and analyzed according to HP/LP-EGR strategies while EGR rate was fixed. Operating range for the strategy were divided into three parts, low load for low temperature combustion, high load for conventional diesel combustion, and transient condition. Finally, with the above strategy of this study, BSFC of the engine was improved about 2% compared to the base engine, and emission level, NOx and PM, met Tier4Final emission regulation.

CO2를 포함한 Simulated-EGR 압축착화엔진에서 당량비 변화에 따른 성능 예측 (Performance Prediction according to Equivalence Ratio Change in Simulated-EGR Compression Ignition Engine Containing CO2)

  • 서현규
    • 한국분무공학회지
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    • 제25권1호
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    • pp.21-26
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    • 2020
  • The objective of this work is to numerically reveal the effect of equivalence ratio change on the simultaneous reduction of NOX and soot emissions from the simulated-EGR compression ignition engine containing CO2. An experiment was conducted by using a single-cylinder common-rail injection system engine, an intake control system, and exhaust emissions analyzers. The numerical analysis results were validated under the same experimental conditions. To investigate the effect of equivalence ratio by simulated-EGR containing CO2, the O2, N2, and CO2 mole fraction were changed in the initial air conditions to the cylinder. The results were analyzed in terms of peak cylinder pressure, indicated mean effective pressure, indicated specific nitrogen oxide, and indicated specific soot. It was revealed that ignition delay characteristics and heat release rate (ROHR) characteristics were not significantly different according to the equivalence ratio. However, as the equivalence ratio increased from 0.68 to 0.83, the maximum combustion pressure and IMEP decreased by about 6.5% and 9.4%, respectively. In the case of ISFC, as is well known, the trend is opposite of IMEP. In the case of ISNO, as the equivalence ratio increased, less NO was generated, and as the equivalence ratio increased by 0.05, the ISSoot value of about 10% increased.