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A ZERO-DIMENSIONAL COMBUSTION MODEL WITH REDUCED KINETICS FOR SI ENGINE KNOCK SIMULATION

机译:简化动力学的零维燃烧模型用于SI发动机爆震模拟

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摘要

High load performance and fuel economy of gasoline engines are limited by knocks. Such limitations are becoming worse when the engine is heavily super-charged for high BMEP outputs. Spark ignition timing retardation has been an efficient method to avoid knock but results in reduced engine performance and poor fuel economy. A better understanding of knock, which could be used to optimize the engine design, and ignition timing optimization in particular, is important. In this research, a simulation model for SI engine knock has been developed. The model is based on a three-zone approach (i.e., unburned, burning, and burned zones). Tanaka's reduced chemical kinetic model for a commercial gasoline fuel with an R ON of 95 has been modified and applied in both burned and unburned zones incorporated with the LUCKS (Loughborough University Chemical Kinetics Simulation) code. Both post-flame heat release and pre-flame autoignition have been simulated. The burning zone uses equilibrium combustion thermodynamic models. The simulated results have been validated against experimental results, and good agreements have been achieved.
机译:爆震限制了汽油发动机的高负荷性能和燃油经济性。当发动机为高BMEP输出大量增压时,这种限制变得越来越严重。火花点火正时延迟是避免爆震的有效方法,但会导致发动机性能下降和燃油经济性降低。更好地理解爆震可用于优化发动机设计,尤其是优化点火正时,这一点很重要。在这项研究中,已开发出用于SI发动机爆震的仿真模型。该模型基于三区域方法(即未燃烧,燃烧和燃烧区域)。田中针对R ON为95的商用汽油燃料的简化化学动力学模型已被修改,并已应用到包含LUCKS(拉夫堡大学化学动力学模拟)代码的燃烧区和未燃烧区。火焰后的热释放和火焰前的自燃都已被模拟。燃烧区使用平衡燃烧热力学模型。仿真结果已与实验结果进行了验证,并取得了良好的协议。

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