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首页> 外文期刊>International Journal of Wavelets, Multiresolution and Information Processing >MONITORING MACHINING PROCESSES BASED ON DISCRETE WAVELET TRANSFORM AND STATISTICAL PROCESS CONTROL
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MONITORING MACHINING PROCESSES BASED ON DISCRETE WAVELET TRANSFORM AND STATISTICAL PROCESS CONTROL

机译:基于离散小波变换和统计过程控制的加工过程监控

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This paper presents a new method to monitor machining processes based on a combination of discrete wavelet transform (DWT) and statistical process control (SPC), called a multi-scale statistical approach. First, DWT is applied to decompose the sensor signal onto different scales. Next, the detection limits are formed for each decomposed signal components, called the sub-signals, using Shewhart control charts. Finally, by inverse wavelet transform of the threshold crossing points of the sub-signals, malfunctions can be detected. Based on a test on the tool condition monitoring in turning using acoustic emission (AE) signal, it is shown that the new method is effective and robust.
机译:本文提出了一种基于离散小波变换(DWT)和统计过程控制(SPC)相结合的监控加工过程的新方法,称为多尺度统计方法。首先,应用DWT将传感器信号分解为不同的比例。接下来,使用Shewhart控制图为每个分解后的信号分量(称为子信号)形成检测极限。最后,通过子信号的阈值交叉点的逆小波变换,可以检测出故障。通过对声发射(AE)信号进行车削时刀具状态监控的测试,表明该新方法有效且鲁棒。

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