Development of Neural network based Plasma Monitoring System and simulator for Laser Welding Quality Analysis

  • Kwon, Jang-Woo (Dept. of Computer Eng. Tongmyong Univ. of info. Tech.) ;
  • Son, Joong-Soo (Dept. of Design Technology, IAE/Dept. of System Eng., AJOU Univ.) ;
  • Lee, Myung-Soo (Dept. of Computer Eng. Tongmyong Univ. of info. Tech.) ;
  • Lee, Kyung-Don (Dept. of Design Technology, IAE)
  • 발행 : 1999.11.01

초록

Neural networks are shown to be effective in being able to distinguish incomplete penetration-like weld defects by directly analyzing the plasma which is generated on each impingement of the laser on the materials. The performance is similar to that of existing methods based on extracted feature parameters. In each case around 93% of the defects in a database derived from 100 artificially produced defects of known types can be placed into one of two classes: incomplete penetration and bubbling. Especially we present simulator for weld defects classification and data analysis. The present method based on classification using plasma is faster, and the speed is sufficient to allow on-line classification during data collection.

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