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An Approach on Fault Detection in Diesel Engine by Using Symmetrical Polar Coordinates and Image Recognition

机译:基于对称极坐标和图像识别的柴油机故障检测方法

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摘要

Vibration technique provides useful information in fault detection of diesel engine, bringing significant cost benefits to diesel engine condition monitoring. Usually, time-frequency calculation on vibration signal is so complex that it is difficult to achieve online fault detection. In this paper, a method of fault detection in diesel engine is developed based on symmetrical polar coordinates and image recognition. In this method, time-domain waveform of vibration signal is transformed into snowflake-shaped in mirror symmetry pattern without time-frequency analysis. By the comparison of the geometric features of the snowflake images from different wear conditions of crankshaft bearing in diesel engines, we use centroid position and direction angle of the petal in snowflake image as features to detect the fault. Then, fuzzy c-means (FCM) are used to detect the conditions of the engine according to these features. In order to validate the methods, some experiments have been performed, the experimental results show that the centroid position and direction angle of the petal in snowflake image can reflect the information of different wear conditions in crankshaft bearing, and the fault of crankshaft bearing can be detected accurately. Hence, the method can work as fault detection in diesel engine, which is simple and effective, compared with time-frequency calculation method.
机译:振动技术为柴油机故障检测提供了有用的信息,为柴油机状态监测带来了可观的成本优势。通常,对振动信号的时频计算非常复杂,难以实现在线故障检测。本文提出了一种基于对称极坐标和图像识别的柴油机故障检测方法。该方法无需经过时频分析就可以将振动信号的时域波形转换成镜像对称的雪花状。通过比较柴油机曲轴轴承不同磨损条件下的雪花图像的几何特征,以雪花图像中花瓣的质心位置和方向角作为特征来检测故障。然后,根据这些特征,使用模糊c均值(FCM)检测发动机状况。为了验证该方法的有效性,进行了一些实验,实验结果表明,雪花图像中花瓣的质心位置和方向角可以反映曲轴轴承不同磨损情况的信息,并且曲轴轴承的故障可能是由于准确检测。因此,与时频计算方法相比,该方法可作为柴油机故障检测的一种简便有效的方法。

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