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Monitoring of root gap change based on electrical signals of flux-cored arc welding using random convolution kernel transform
- Jang, Junmyoung;
- Lee, Jaeheon;
- Lee, Jaeyoung;
- Park, Sang Rin;
- Kim, Jin-young;
- ... Kim, Young-Beom;
- ... Lee, Seung Hwan
WEB OF SCIENCE
5SCOPUS
5초록
A monitoring technique for detecting changes in the root gap of butt joints during the flux-cored arc welding (FCAW) was proposed. FCAW experiments were conducted for both increasing and decreasing root gap conditions, and current and voltage were measured during the root-pass welding. The measured time series signals were used as input data for training Random Convolution Kernel Transform (ROCKET) algorithm, which consists of a feature extractor with multiple random kernels, and a linear classifier. A univariate model using current and voltage, respectively, and a multivariate model using both were compared, and the multivariate model showed the highest classification accuracy of 96.2%. Moreover, the classification errors were investigated by correlating the geometry of the root bead with the measured signals.
키워드
- 제목
- Monitoring of root gap change based on electrical signals of flux-cored arc welding using random convolution kernel transform
- 저자
- Jang, Junmyoung; Lee, Jaeheon; Lee, Jaeyoung; Park, Sang Rin; Kim, Jin-young; Kim, Young-Beom; Lee, Seung Hwan
- 발행일
- 2023-11
- 유형
- Article in press
- 권
- 28
- 호
- 8
- 페이지
- 738 ~ 746