A laser/EMAT (electromagnetic-acoustic transducer) concurrent weld inspection system
Jeremy A. Johnson, Nancy M. Carlson
Abstract
Open-access reader
Jeremy A. Johnson, Nancy M. Carlson
Abstract
Open-access reader
A noncontacting ultrasonic sensor system is being developed for on-line inspection of thick section welds made by a robotic gas metal arc welding (GMAW) system. The sensor system consists of a pulsed laser for generating the ultrasound and an electromagnetic-acoustic transducer (EMAT) for receiving it. The sensor will follow closely behind the weld head and inspect the solidified weld bead for flaws. The main advantage of this technique is that flaws can be found and repaired before they are covered by subsequent welding passes. This is expected to be much simpler and less likely to induce further flaws than current practice since a large amount of otherwise good weld metal need not be removed to reach and repair a flaw. The system also monitors the welding process, i.e., detection of a large number of flaws indicates that the process is no longer operating as planned. In this paper, the technique for detecting incomplete sidewall penetration is demonstrated and methods for improving the system are discussed. 12 refs., 3 figs., 1 tab.
A significance statement is not available in the OpenAlex record.
A contribution statement is not available in the OpenAlex record.
Method details are not available in the OpenAlex metadata.
Findings are not separately available in the OpenAlex metadata.
Limitations are not available in the OpenAlex metadata.
Application details are not available in the OpenAlex metadata.
A noncontacting ultrasonic sensor system is being developed for on-line inspection of thick section welds made by a robotic gas metal arc welding (GMAW) system. The sensor system consists of a pulsed laser for generating the ultrasound and an electromagnetic-acoustic transducer (EMAT) for receiving it. The sensor will follow closely behind the weld head and inspect the solidified weld bead for flaws. The main advantage of this technique is that flaws can be found and repaired before they are covered by subsequent welding passes. This is expected to be much simpler and less likely to induce further flaws than current practice since a large amount of otherwise good weld metal need not be removed to reach and repair a flaw. The system also monitors the welding process, i.e., detection of a large number of flaws indicates that the process is no longer operating as planned. In this paper, the technique for detecting incomplete sidewall penetration is demonstrated and methods for improving the system are discussed. 12 refs., 3 figs., 1 tab.
Key concepts: Electromagnetic acoustic transducer, Welding, Ultrasonic sensor, Acoustics, Transducer, Ultrasonic testing, Laser beam welding, Laser