Enhancement of knocking detection accuracy by an ion-current sensor integrated in the ignition system

IF 1.2 4区 工程技术 Q3 THERMODYNAMICS
Kengo Kumano, Hiroshi Kimura, Yoshihiko Akagi, Shinya Matohara, Yoshifumi Uchise, Y. Yamasaki
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引用次数: 2

Abstract

Abnormal combustion such as pre-ignition and knocking is becoming one of the biggest problems in the latest gasoline engines that have a higher compression ratio and boosting for higher efficiency. An ion-current sensor integrated in an ignition system is used for accurately detecting knocking cycles. First, the problem for accurate knocking detection with an ion-current sensor was clarified in the test engine. The oscillation in the ion-current signal was observed in knocking cycles as is commonly known in the previous research. However, heavy oscillation in the ion-current signal can be observed occasionally even in the small knocking cycles. This phenomenon leads to the misdetection of knocking cycles with the conventional signal-processing method, which defines the oscillation intensity of the change amount in the ion-current signal as a knocking indicator. Second, to solve the problem mentioned above, a new signal-processing method is proposed on the basis of the thermal characteristics of ion-current signals. This method defines the oscillation intensity of the “normalized ion-signal change rate” as a knock indicator in order to suppress the effect of temperature dependency in ion-current signals. Finally, the proposed method was applied to an actual gasoline engine, and the knocking detection performance was evaluated. The method enabled the misdetection of the knocking cycles to be avoided and enhanced the correlation factor with knock intensity compared with the conventional method. vibration sensor equipped on the engine block. Yang et al. (2010) developed a signal-processing method to detect the low intensity vibration from short data series, on the basis of kurtosis of vibration intensity. Momeni et al. (2016) proposed a normalization model that enables a fixed detection threshold in all head can be changed, and the signal intensity of the ion current can be adjusted.
通过集成在点火系统中的离子电流传感器提高爆震检测精度
在以更高的压缩比和增压来提高效率的最新汽油发动机中,预燃和爆震等异常燃烧正成为最大的问题之一。离子电流传感器集成在点火系统中,用于精确检测爆震周期。首先,澄清了在试验发动机中使用离子电流传感器进行准确爆震检测的问题。在以往的研究中,离子电流信号的振荡是在敲打周期中观察到的。然而,即使在小的敲打周期中,偶尔也可以观察到离子电流信号中的剧烈振荡。这种现象导致传统的信号处理方法将离子电流信号变化量的振荡强度定义为爆震指标,对爆震周期的检测存在错误。其次,针对上述问题,基于离子电流信号的热特性,提出了一种新的信号处理方法。该方法将“归一化离子信号变化率”的振荡强度定义为爆震指标,以抑制温度依赖性对离子电流信号的影响。最后,将该方法应用于一台实际汽油机,对其爆震检测性能进行了评价。与传统方法相比,该方法避免了爆震周期的误检,提高了爆震强度与爆震周期的相关系数。发动机缸体上装有振动传感器。Yang等(2010)基于振动强度峰度,提出了一种从短数据序列中检测低强度振动的信号处理方法。Momeni et al.(2016)提出了一种归一化模型,可以改变所有头部的固定检测阈值,并且可以调节离子电流的信号强度。
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来源期刊
CiteScore
2.30
自引率
8.30%
发文量
0
审稿时长
5 months
期刊介绍: JTST covers a variety of fields in thermal engineering including heat and mass transfer, thermodynamics, combustion, bio-heat transfer, micro- and macro-scale transport phenomena and practical thermal problems in industrial applications.
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