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디젤 저온연소 운전 영역에서 흡기압이 엔진 성능에 주는 영향

Effect of Intake Pressure on Emissions and Performance in Low Temperature Combustion Operation of a Diesel Engine

  • 이선엽 (한국기계연구원 그린동력연구실) ;
  • 장재훈 (한국기계연구원 그린동력연구실) ;
  • 이용규 (한국기계연구원 그린동력연구실) ;
  • 오승묵 (한국기계연구원 그린동력연구실) ;
  • 김용래 (한국기계연구원 그린동력연구실) ;
  • 김득상 ((주)두산 인프라코어 신연소기술팀)
  • Lee, Sun-Youp (Engine Research Team, Korea Institute of Machinery and Materials) ;
  • Chang, Jae-Hoon (Engine Research Team, Korea Institute of Machinery and Materials) ;
  • Lee, Yong-Gyu (Engine Research Team, Korea Institute of Machinery and Materials) ;
  • Oh, Seung-Mook (Engine Research Team, Korea Institute of Machinery and Materials) ;
  • Kim, Yong-Rae (Engine Research Team, Korea Institute of Machinery and Materials) ;
  • Kim, Duk-Sang (Advanced Combustion & Engine Technology Team, Doosan Infracore Inc.)
  • 투고 : 2011.03.04
  • 심사 : 2011.06.24
  • 발행 : 2012.01.01

초록

One of the effective ways to reduce both $NO_x$ and PM at the same time in a diesel CI engine is to operate the engine in low temperature combustion (LTC) regimes. In general, two strategies are used to realize the LTC operation-dilution controlled LTC and late injection LTC - and in this study, the former approach was used. In the dilution controlled regime, LTC is achieved by supplying a large amount of EGR to the cylinder. The significant EGR gas increases the heat capacity of in-cylinder charge mixture while decreasing oxygen concentration of the charge, activating low temperature oxidation reaction and lowering PM and $NO_x$ emissions. However, use of high EGR levels also deteriorates combustion efficiency and engine power output. Therefore, it is widely considered to use increased intake pressure as a way to resolve this issue. In this study, the effects of intake pressure variations on performance and emission characteristics of a single cylinder diesel engine operated in LTC regimes were examined. LTC operation was achieved in less than 8% $O_2$ concentration and thus a simultaneous reduction of both PM and $NO_x$ emission was confirmed. As intake pressure increased, combustion efficiency was improved so that THC and CO emissions were decreased. A shift of the peak Soot location was also observed to lower $O_2$ concentration while $NO_x$ levels were kept nearly zero. In addition, an elevation of intake pressure enhanced engine power output as well as indicated thermal efficiency in LTC regimes. All these results suggested that LTC operation range can be extended and emissions can be further reduced by adjusting intake pressure.

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참고문헌

  1. S. Kimura, O. Aoki, H. Ogawa, S. Muranaka and Y. Enomoto, "New Combustion Concept for Ultra-clean and High-efficiency Small DI Diesel Engines," SAE 1999-01-3681, Vol.108, 1999.
  2. K. V. Tanin, D. D. Wickman, D. T. Montgomery, S. Das and R. D. Reitz, "The Influence of Boost Pressure on Emissions and Fuel Consumption of a Heavy-duty Single Cylinder D. I. Diesel Engine," SAE 1999-01-0840, Vol.108, 1999.
  3. C. Noehre, M. Andersson, B. Johansson and A. Hultqvist, "Characterization of Partially Premixed Combustion," SAE 2006-01-3412, 2006.
  4. C. W. Colban, P. C. Miles and S. Oh, "Effect of Intake Pressure on Performance and Emissions in an Automotive Diesel Engine Operating in Low Temperature Combustion Regimes," SAE 2007-01-4063, 2007.
  5. J. H. Jang, S. Lee, Y. Lee and S. Oh, "EGR Simulation Gas Supply System Using Orifice Flow Controller," Annual Conference Proceedings, KSAE, pp.256-258, 2010.
  6. L. M. Pickett and C. A. Idicheria, "Effects of Ambient Temperature and Density on Soot Formation under High-EGR Conditions," Proc. of THIESEL Conference on Thermo- and Fluid Dynamic Processes in Diesel Engines, pp.13- 15, 2006
  7. J. B. Heywood, Internal Combustion Fundamentals, McGraw-Hill, Inc., New York, 1988.