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Effect of Valve Timing and Residual Gas Dilution on Flame Development Characteristics in a Spark Ignition Engine

机译:气门正时料和残余气体稀释对火花点火发动机火焰开发特性的影响

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The goal of this research was to study and quantify the effect of exhaust valve timing and residual gas dilution on incylinder flow patterns, flame propagation and heat release characteristics in a spark ignition engine. Experiments were carried out in a recently developed single cylinder optical engine. Particle image velocimetry (PIV) was applied to measuring and evaluating the in-cylinder flow field. Detailed analysis of flame images combined with heat release data was presented for several engine operating conditions, giving insight into the combustion process in terms of visible flame area and flame expansion speed. Results from PIV measurement indicates that the limited alteration of the in-cylinder bulk flow could be observed with the variation of exhaust valve timing. The in-cylinder fluctuating kinetic energies and their Coefficient of Variations (COVs) decrease with the advance of the exhaust valve timing. Analysis based on the chemiluminescence imaging and the in-cylinder pressure shows that faster flame kernel formation and less distortion of flame shape in the early flame development stage could be obtained by the initial advance of exhaust valve timing, which benefits the combustion event by advancing the combustion timing and shortening the ignition delay and combustion duration without much increase in Coefficient of Variation of Indicated Mean Effective Pressure (COV_(IMEP)). By further advancing the exhaust valve timing to 32 CA Before Top Dead Center (BTDC), the combustion severely deteriorates with retarded combustion timing and higher cyclic variations, caused by the higher dilution level and lower fluctuation kinetic energy.
机译:本研究的目标是研究和量化排气阀正时和残留气体稀释对灌注器流动图案的影响,火焰传播和火花点火发动机中的热释放特性。在最近开发的单缸光学发动机中进行实验。将粒子图像速度(PIV)应用于测量和评估缸内流场。对于多个发动机操作条件,提出了对热释放数据结合的火焰图像的详细分析,在可见火焰区域和火焰膨胀速度方面深入了解燃烧过程。 PIV测量结果表明,通过排气气门正时的变化,可以观察到缸内流量的有限改变。随着排气阀正时的前进,缸内缸面波动动力及其变化系数(COV)减小。基于化学发光成像的分析和缸内压力显示,通过排气门正时的初始进展,可以获得更快的火焰孔形成和较小的火焰形状在早期火焰显影阶段的变形,这使得通过推进燃烧事件使燃烧事件有益于推进燃烧正时和缩短点火延迟和燃烧持续时间,没有大幅增加表示平均有效压力的变化系数(CoV_(IMEP))。通过进一步将排气阀正时向32℃进一步推进到顶部死亡中心(BTDC)之前,燃烧严重劣化,延迟燃烧正时和较高的循环变化,由较高的稀释水平和更低的波动动能引起。

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