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Real time monitoring of tool breakage in a milling operation using a digital signal processor
Authors:Dae Kyun Baek  Tae Jo Ko  Hee Sool Kim
Affiliation:

a Andong Institute of Information Technology, 1217 Imha, Andong, Kyoungbuk 760-830, South Korea

b School of Mechanical Engineering, Yeungnam University, 214-1 Daedong, Gyoungsan, Kyoungbuk 712-749, South Korea

Abstract:A monitoring system that can detect tool breakage and chipping in real time was developed using a digital signal processor (DSP) board in a face milling operation. An autoregressive (AR) model and a band energy method were used to extract the features of tool states from cutting force signals. Then, two artificial neural networks, which have a parallel processing capability, were embedded on the DSP board to discriminate different malfunction states from features obtained by each of the two methods of signal processing. In experiments, we found that feature parameters extracted by AR modeling were more accurate indicators of malfunctions in the process than those from the band energy method, although the computing speed is slower. By using the selected features, we were able to monitor malfunctions in real time.
Keywords:Milling operation  Tool breakage  Real time  AR modeling  DSP (digital signal processor)
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