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Misfire detection and re-ignition control by ion current signal feedback during cold start in two-stage direct-injection engines

机译:两级直喷式发动机冷启动期间通过离子电流信号反馈进行失火检测和重燃控制

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摘要

A misfire detection and re-ignition control device based on an ion current signal is designed, and a method for calculating the threshold level of an ion current integral signal is proposed to judge a misfire event. Based on the combustion cycle control strategy, start-up combustion cycle misfire detection and re-ignition control are investigated in a TSDI-Two Stage Direct Injection gasoline engine using ion current signal feedback. The results show that it is feasible for the ion current integral signal to be used for misfire detection and re-ignition control. In the experiment, when the ion current integral signal is larger than the misfire threshold level (U_(misfire) > 0.5 V), the ion current exists in the combustion chamber, the in-cylinder fuel-air mixture combusts, and the re-ignition event cannot occur. When the ion current integral signal is smaller than the misfire threshold level (U_(misfire) < 0.5 V), the ion current is close to zero, the misfire event occurs, and re-ignition takes place. As far as hydrocarbon emissions are concerned, the level of unburnt hydrocarbons under successful ignition is lowest, the level of unburnt hydrocarbons under successful re-ignition is higher, and the level of unburnt hydrocarbons under unsuccessful ignition and re-ignition is the highest. Hence, the start-up combustion cycle misfire detection and re-ignition control based ion current signal feedback strategy is favorable for reducing unburnt hydrocarbon emissions.
机译:设计了一种基于离子电流信号的失火检测与重燃控制装置,提出了一种计算离子电流积分信号阈值水平的方法来判断失火事件。基于燃烧循环控制策略,研究了使用离子电流信号反馈的TSDI两级直喷汽油发动机的启动燃烧循环失火检测和重点火控制。结果表明,将离子电流积分信号用于失火检测和重燃控制是可行的。在实验中,当离子电流积分信号大于不点火阈值水平(U_(misfire)> 0.5 V)时,离子电流存在于燃烧室中,缸内燃料-空气混合物燃烧,并重新燃烧。不会发生点火事件。当离子电流积分信号小于失火阈值水平(U_(misfire)<0.5 V)时,离子电流接近零,发生失火事件,并发生重新点火。就碳氢化合物排放而言,成功点火下未燃烧的碳氢化合物的水平最低,成功点火后未燃烧的碳氢化合物的水平较高,点火不成功和再点火的未燃烧碳氢化合物的水平最高。因此,基于启动燃烧循环失火检测和重燃控制的离子电流信号反馈策略有利于减少未燃碳氢化合物的排放。

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