首页> 外文期刊>International Journal of Automotive Technology >COMPUTATIONAL STUDY OF CHARGE STRATIFICATION IN EARLY-INJECTION SCCI ENGINES UNDER LIGHT-LOAD CONDITIONS
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COMPUTATIONAL STUDY OF CHARGE STRATIFICATION IN EARLY-INJECTION SCCI ENGINES UNDER LIGHT-LOAD CONDITIONS

机译:轻载条件下早期注入SCCI发动机中电荷分层的计算研究

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摘要

Under light-load conditions in early-injection stratified-charge compression-ignition (SCCI) engines, excessive premixing can lead to undesirable levels of unburned hydrocarbons (UHC) and carbon monoxide (CO) emissions. Optimal stratification can reduce these emissions. In this work, the effects of changes in swirl, injection pressure, injector hole-size and number of holes, injection timing, and piston geometry on stratification are computationally investigated. It is shown that these parameters affect the stratification through their influence on the rate of spray penetration, drop vaporization, and fuel/air mixing. The outcome is characterized by examining the evolution of the spatial distribution of the fuel vapor in the chamber and its mass-based distribution function. All other parameters remaining the same, decreasing drop size leads to faster vaporization and richer mixtures. Increasing penetration leads to greater spreading and leaner mixtures. Increasing spray included-angle leads to greater spreading and leaner mixtures. Increasing injection pressure leads to increased mixing and leaner mixtures. Increasing injector hole-size leads to richer mixtures at lighter loads because the duration of injection is reduced and the fuel is confined closer to the axis. Increasing swirl leads to faster breakup of the head-vortex and confinement of the fuel closer to the axis, and hence richer mixture.
机译:在早期喷射分层充气压燃式(SCCI)发动机的轻载条件下,过度的预混合会导致不希望的未燃烧碳氢化合物(UHC)和一氧化碳(CO)排放。最佳分层可以减少这些排放。在这项工作中,通过旋流,喷射压力,喷射器孔尺寸和孔数,喷射正时和活塞几何形状的变化对分层的影响进行了研究。结果表明,这些参数通过影响喷雾渗透速度,液滴蒸发和燃料/空气混合,从而影响分层。通过检查燃烧室中燃料蒸气的空间分布的演变及其基于质量的分布函数来表征结果。所有其他参数保持不变,液滴尺寸减小导致更快的蒸发和更浓的混合物。渗透率的增加导致更大的扩散和更稀薄的混合物。喷雾夹角的增加导致更大的扩散和更稀薄的混合物。增加注射压力会导致混合增加和混合物变稀。喷油嘴孔尺寸的增加导致在较轻的负载下混合气变得更浓,因为喷油时间缩短了,燃油被限制在靠近轴的位置。涡旋的增加导致顶部旋涡的更快破裂和燃料更靠近轴线的约束,从而使混合气更浓。

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