Exhaust Emissions Characteristics on the SI Engine according to the Air-Fuel Mixture with Ozone

혼합기 오존 첨가에 따른 SI기관의 배기배출물 특성

  • 이병호 (오산대학 자동차기계계열) ;
  • 이중섭 (경상대학교 대학원) ;
  • 이용훈 (경상대학교 대학원) ;
  • 이찬규 (거제대학 메카트로닉스) ;
  • 정효민 (경상대학교 기계항공공학부, 해양산업연구소) ;
  • 정한식 (경상대학교 기계항공공학부, 해양산업연구소)
  • Published : 2006.08.31

Abstract

In a conventional and lean operating engine, the state of mixture is very important in the combustion and emission characteristics. Lean operation is known to decrease the formation while maintaining a good fuel economy, but the unstable operation due to misfire and erratic combustion prevents engines from being operated at very lean mixtures, so both combustion rates and exhaust emission formation need to be satisfied comparably. In this study, it is designed and experimented the modified engine, and analyzed the combustion and exhaust emission according to the change of engine speed and with adding ozone. The conclusions were drawn out and enumerated as follows. 1. At the experimental result of automobile diesel engine, it has been verified that the formation of particulate matter(PM) gas is able to be lower with the addition of optimum quantities of ozone. 2. Carbon monoxide(CO) was formed by the lack of oxygen and the thermal dissociation in the combustion process. Therefore, with the change of swirl valve's position and addition of oxygen and ozone, CO formation was decreased by the increasing of excessive O2, but it was increased by the temperature of combustion gas growing higher. As a result of the two effects, CO formation was decreased in this study. 3. Hydrocarbon(HC) was formed by the lack of O2, and the flow of mixture in cylinder. According to opening of the swirl valve and adding the oxygen and ozone, hydrocarbon gas was decreased by 20%, 9%, and 27.5%, respectively. 4. Nitric oxides($NO_x$) was strongly affected by the combustion gas temperature. As a result of respectively experimental conditions, $NO_x$ formation was increased about 20% due to (be the) high(er) combustion gas temperature.

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