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Evaporate prediction and compensation of intake port wall-wetting fuel film for spark ignition engines fueled with ethanol-gasoline blends

Evaporate prediction and compensation of intake port wall-wetting fuel film for spark ignition engines fueled with ethanol-gasoline blends
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摘要 The fuel dynamic transfer process,including fuel injection,fuel film deposition and evaporation in the intake port,was analyzed for spark ignition(SI) engines with port fuel injection(PFI).The influence of wall-wetting fuel film,especially its evaporation rate,upon the air-fuel ratio of in-cylinder mixtures was also discussed.According to the similarity principle,Fick's law,the ideal gas equation and the Gilliland correlation,an evaporate prediction model of wall-wetting fuel film was set up and an evaporate prediction based dynamic fuel film compensator was designed.Through engine cold start tests,the wall-wetting temperature,which is the key input of the fuel film evaporate prediction model,was also modeled and predicted.Combined with the experimental data of the evaporation characteristics of ethanol-gasoline blends and engine calibration tests,all the parameters of the wall-wetting fuel film evaporate prediction model used in the fuel film compensator were identified.Square-wave disturbance tests of fuel injection showed that with the help of the fuel film compensator the response of the in-cylinder air-fuel ratio was significantly improved and the real air-fuel ratio always closely matched the expected ratio.The fuel film compensator was then integrated into the final air-fuel ratio controller,and the engine tests showed that the air-fuel ratio control error was less than 2% in steady-state conditions,and less than 4% in transient conditions.The fuel film compensator also showed good adaptability to different ethanol-gasoline blends. The fuel dynamic transfer process, including fuel injection, fuel film deposition and evaporation in the intake port, was analyzed for spark ignition (SI) engines with port fuel injection (PFI). The influence of wall-wetting fuel film, especially its evaporation rate, upon the air-fuel ratio of in-cylinder mixtures was also discussed. According to the similarity principle, Fick's law, the ideal gas equation and the Gilliland correlation, an evaporate prediction model of wall-wetting fuel film was set up and an evaporate prediction based dynamic fuel film compensator was designed. Through engine cold start tests, the wall-wetting temperature, which is the key input of the fuel film evaporate prediction model, was also modeled and predicted. Combined with the experimental data of the evaporation characteristics of ethanol-gasoline blends and engine calibration tests, all the parameters of the wall-wetting fuel film evaporate prediction model used in the fuel film compensator were identified. Square-wave disturbance tests of fuel injection showed that with the help of the fuel film compensator the response of the in-cylinder air-fuel ratio was significantly improved and the real air-fuel ratio always closely matched the expected ratio. The fuel film compensator was then integrated into the final air-fuel ratio controller, and the engine tests showed that the air-fuel ratio control error was less than 2% in steady-state conditions, and less than 4% in transient conditions. The fuel film compensator also showed good adaptability to different ethanol-gasoline blends.
出处 《Journal of Zhejiang University-Science A(Applied Physics & Engineering)》 SCIE EI CAS CSCD 2012年第8期610-619,共10页 浙江大学学报(英文版)A辑(应用物理与工程)
基金 Project (Nos. 51106136 and 50776078) supported by the National Natural Science Foundation of China
关键词 火花点火(SI ) 引擎 乙醇汽油混合 弄湿墙的效果 蒸发预言 燃料电影赔偿 Spark ignition (SI) engine, Ethanol-gasoline blend, Wall-wetting effect, Evaporate prediction, Fuel film compensation
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参考文献18

  • 1Alkidas, A., 2001. Intake-Valve Temperature Histories during SI Engine Warm-up. SAE Technical Paper, 2001-01- 1704. [doi:10.427112001-01-1704].
  • 2Anderson, J.E., Dicicco, D.M., Ginder, J.M., Kramer, U., Leone, T.G, Raney-Pablo, H.E., Wallington, T.J., 2012. High octane number ethanol-gasoline blends: quantifying the potential benefits in the United States. Fuel, 97: 585-594. [doi:10.1016/j.fuel.2012.03.017].
  • 3Aquino, C., 1981. Transient A/F Control Characteristics of the 5 Liter Central Fuel Injection Engine. SAE Technical Paper, 810494. [doi:10.42711810494].
  • 4Arsie, I., Pianese, C., Rizzo, G., Cioffi, V., 2003. An adaptive estimator of fuel film dynamics in the intake port of a spark ignition engine. Control Engineering Practice, 11(3):303-309. [doi:10.10161S0967-0661(02)00040-0].
  • 5Balabin, R.M., Synnyaev, R.Z., Karpov, S.A., 2007. Molar enthalpy of vaporization of ethanol-gasoline mixtures and their colloid state. Fuel, 86(3):323-327. [doi:10.1016/j. fuel .2006.08.008].
  • 6Celik, M.B., 2008. Experimental determination of suitable ethanol-gasoline blend rate at high compression ratio for gasoline engine. Applied Thermal Engineering, 28(5-6): 396-404. [doi:10.10161j.applthermaleng.2007.10.028].
  • 7Charoenphonphanich, C., Omman, P., Karin, P., Kosaka, H., Chollacoop, N., 2011. Experimental Investigation in Combustion Characteristics of Ethanol-Gasoline Blends for Stratified Charge Engine. SAE Technical Paper,2011-32-0551. [doi:10.4271/2011-32-0551].
  • 8Cowart, J., Cheng, W., 1999. Intake Valve Thermal Behavior during Steady-State and Transient Engine Operation. SAE Technical Paper, 1999-01-3643. [doi:10.4271/1999- 01-3643].
  • 9Hendricks, E., Vesterholm, T., Sorenson, S., 1992. Nonlinear, Closed Loop, SI Engine Control Observers. SAE Tech- nical Paper, 920237. [doi:10.42711920237].
  • 10Joshi, S., Lave, L., Maclean, H., Lankey, R., 2000. A Life Cycle Comparison of Alternative Transportation Fuels. SAE Technical Paper, 2000-01-1516. [doi:10.427112000-01- 1516].

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