An investigation for reducing combustion instability under cold-start condition of a direct injection gasoline engine

燃烧 平均有效压力 机械 点火系统 当量比 发动机爆震 汽油机 化学 点火正时 压缩比 燃油喷射 冷启动(汽车) 材料科学 均质压燃 热力学 汽车工程 燃烧室 物理 工程类 燃烧室 有机化学
作者
Koshiro Kimura,Sachio Mori,Masato Kawauchi,Rio Shimizu
出处
期刊:International Journal of Engine Research [SAGE Publishing]
卷期号:20 (4): 470-479 被引量:8
标识
DOI:10.1177/1468087418766924
摘要

In order to meet recent stringent emission regulations, the exhaust catalyst should be heated as early as possible to activate the purifying reactions. In a direct injection spark-ignition engine, a combination of late fuel injection during the compression stroke and late ignition in the expansion stroke is a common strategy to quickly raise exhaust gas temperature for subsequent rapid activation of exhaust catalysts. However, this approach under cold start-up of an engine often results in incomplete and unstable combustion. In this study, to explore the conditions of stable ignition and combustion, the effect of injection timing on indicated mean effective pressure and early combustion duration (MBD0.5) are first investigated by an analysis of the pressure indicator diagram. As this analysis shows a strong correlation between indicated mean effective pressure and MBD0.5, the mechanism of initial flame propagation is investigated intensively using optical diagnostics. Namely, mean equivalence ratio of mixtures in the propagating flame front is measured by focusing on the ratio of C 2 * to CH* emission intensities. The flow velocity and turbulence intensity around the spark electrode are measured by the back-scattering laser Doppler anemometry. Two major conclusions are derived from this study: First, when the injection timing is retarded, the mean equivalence ratio increases as the time for the injected fuel to travel and diffuse is shortened. The most preferable mean equivalence ratio for fast initial combustion is found to lie in a range from 1.2 to 1.4. Second, when the second injection timing is retarded further, the mean equivalence ratio increases exceeding 1.4, and this results in slower and more fluctuated initial flame propagation. But, if the turbulent intensity is increased by means of the spray induced air motion, the slowed initial combustion can be recovered.
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