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Published in: The International Journal of Advanced Manufacturing Technology 1-2/2022

11-11-2021 | Application

The study of machine learning for wire rupture prediction in WEDM

Authors: Ping-Hsien Chou, Yean-Ren Hwang, Bling-Hwa Yan

Published in: The International Journal of Advanced Manufacturing Technology | Issue 1-2/2022

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Abstract

During wire electrical discharge machining (WEDM), wire rupture may deteriorate workpieces’ machined surfaces and increase the processing time. However, only a few referenced papers focused on wire rupture during past decades because of its complexity. In this research, machine learning (ML) technique was applied to analyze the relationship between manufacturing parameters and the chance of wire rupture. Three parameters, including gap voltage (GV), feed rate (FR), and water resistance (WR), were considered as training features, and a total of 298 sets were used to train an artificial neural network (ANN). The results show that the prediction accuracy of wire rupture for 10 s in advance is above 85%. This research developed a new method to apply the real-time predict wire rupture and is faster, more accurate than prior research. Besides, this method is extendable for future measured data when the usable sensor data are increasing.

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Literature
16.
go back to reference Graupe D (2013) Principles of Artificial Neural Networks, 3rd Ed, Advanced Series in Circuits and Systems, World Scientific Publishing Co. Pte. Ltd., Singapore Graupe D (2013) Principles of Artificial Neural Networks, 3rd Ed, Advanced Series in Circuits and Systems, World Scientific Publishing Co. Pte. Ltd., Singapore
Metadata
Title
The study of machine learning for wire rupture prediction in WEDM
Authors
Ping-Hsien Chou
Yean-Ren Hwang
Bling-Hwa Yan
Publication date
11-11-2021
Publisher
Springer London
Published in
The International Journal of Advanced Manufacturing Technology / Issue 1-2/2022
Print ISSN: 0268-3768
Electronic ISSN: 1433-3015
DOI
https://doi.org/10.1007/s00170-021-08323-5

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