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Application of Acoustic and Vibration-Based Knock Detection Techniques to a High Speed Engine

机译:基于振动的爆震检测技术在高速发动机中的应用

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Knock control systems based on engine block vibrations analysis are widely adopted in passenger car engines, but such approach shows its main limits at high engine speeds, since knock intensity measurement becomes less reliable due to the increased background mechanical noise. For small two wheelers engines, knock has not been historically considered a crucial issue, mainly due to small-sized combustion chambers and mixture enrichment. Due to more stringent emission regulations and in search of reduced CO_2 emissions, an effective on-board knock controller acquires today greater importance also for motorcycle applications, since it could protect the engine when different fuel types are used, and it could significantly reduce fuel consumption (by avoiding lambda enrichment and/or allowing higher compression ratios to be adopted). These types of engines typically work at high rotational speeds and the reduced signal to noise ratio makes knock onset difficult to identify. The paper shows how knock-related information can be extracted both from accelerometer and acoustic signals, and how the correlation with in-cylinder pressure based indexes can be optimized using advanced signal processing algorithms and specific calibration methodologies, for a wide engine speed range. An optimization procedure that has involved all the calibration parameters that make up sound and vibration-based knock indexes, has allowed to successfully apply knock detection techniques up to 13,000 rpm. Experimental results obtained on the engine test bench are shown throughout the paper, demonstrating the feasibility of both approaches, which provide similar signal-to-noise ratio levels, and can therefore be considered as possible alternatives.
机译:基于发动机块振动分析的爆震控制系统在乘用车发动机中广泛采用,但是这种方法显示其高发动机速度的主要限制,因为由于增加的背景机械噪声,爆震强度测量变得不太可靠。对于小型两轮车发动机来说,敲门们没有被历史上被认为是一个至关重要的问题,主要是由于小型燃烧室和混合富集。由于更严格的排放法规并寻求减少的CO_2排放,有效的板载击败控制器今天也可以获得更重要的是摩托车应用,因为当使用不同的燃料类型时它可以保护发动机,并且可以显着降低燃料消耗(通过避免λ富集和/或允许采用更高的压缩比))。这些类型的发动机通常以高转速工作,并且降低的信噪比使得撞击难以识别。本文显示了如何从加速度计和声信号提取爆震相关信息,以及如何利用先进的信号处理算法和特定校准方法优化与缸内压力的索引的相关性如何进行优化,以实现宽发动机速度范围。已经涉及构成构成声音和基于振动的爆震指数的所有校准参数的优化过程,允许成功应用高达13,000 rpm的爆震检测技术。在整个纸上示出了在发动机测试台上获得的实验结果,证明了两种方法的可行性,它提供了类似的信噪比水平,因此可以考虑为可能的替代方案。

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