柴油机燃烧过程共振频率预测的缸内压力信号处理

Cheng Ximing, L. Long, Jiguang Zhang, J. Du
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引用次数: 2

摘要

燃烧共振是分析柴油发动机燃烧和热力学过程的一个焦点,如检测“爆震”和预测燃烧噪声。燃烧共振频率对缸内气体温度和捕获质量的估计也很重要。通常,谐振频率信息包含在缸内压力信号中。因此,采用缸内压力信号处理进行谐振频率计算。传统的频谱分析,如FFT(快速傅立叶变换),由于其非平稳特性,不适合处理缸内压力信号。其他处理非平稳信号的方法有短时傅里叶变换(STFT)和连续小波变换(CWT)。然而,STFT的窗口大小和形状的选择以及CWT的小波基的选择完全是经验的,这是精确计算谐振频率的限制。本文提出了一种基于经验小波变换(EWT)和希尔伯特变换(HT)的缸内压力信号处理和谐振频率提取方法。为了精确分解缸内压力谱,采用小波变换自适应分离出相应频段的燃烧共振模式与其他无关模式。对含有燃烧谐振模式的信号进行HT处理,提取瞬时谐振频率和幅值。通过四个不同喷射时间的缸内压力信号进行验证。讨论了注入时间对谐振频率的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Signal Processing of In-Cylinder Pressure for the Resonant Frequency Prediction of Combustion Process in Diesel Engines
The combustion resonance is a focal point of the analysis of combustion and thermodynamic processes in diesel engines, such as detecting ‘knock’ and predicting combustion noise. Combustion resonant frequency is also significant for the estimation of in-cylinder bulk gas temperature and trapped mass. Normally, the resonant frequency information is contained in in-cylinder pressure signals. Therefore, the in-cylinder pressure signal processing is used for resonant frequency calculation. Conventional spectral analyses, such as FFT (Fast Fourier transform), are unsuitable for processing in-cylinder pressure signals because of its non-stationary characteristic. Other approaches to deal with non-stationary signals are Short-Time Fourier Transform (STFT) and Continue Wavelet Transform (CWT). However, the choice of size and shape of window for STFT and the selection of wavelet basis for CWT are totally empirical, which is the limit for precisely calculating the resonant frequency. In this study, an approach based on Empirical Wavelet Transform (EWT) and Hilbert Transform (HT) is proposed to process in-cylinder pressure signals and extract resonant frequencies. In order to decompose in-cylinder pressure spectrum precisely, the EWT are applied for separating the frequency band corresponding combustion resonance mode from other irrelevant modes adaptively. The signals containing combustion resonant mode is processed by HT, so that the instantaneous resonant frequency and amplitude can be extracted. Validation is performed by four in-cylinder pressure signals with different injection timing. And the effects of injection timing on resonant frequency are discussed.
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