EventsThe 18th Advanced Infrared Technology and Applications (AITA2025)
Published
This submission belongs to the session Session 3. Session 3 (Under 35) of the event The 18th Advanced Infrared Technology and Applications (AITA2025)
Published date
29 Aug, 2025
Academic Editor
author-avatarHirotsugu Inoue
Citation
Daiki Tazuke, Influences of Dissolved Oxygen and Microbubbles on Heat Generation at Defect under Immersion Sonic-IR Testing, in Proceedings of The 18th Advanced Infrared Technology and Applications (AITA2025), Kobe, Hyogo, 15 September–19 September 2025, MDPI: Basel, Switzerland
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Influences of Dissolved Oxygen and Microbubbles on Heat Generation at Defect under Immersion Sonic-IR Testing

1. The University of Shiga Prefecture, Japan
Abstract

Sonic-IR method is an innovative approach to defect detection. Ultrasonic waves are input to the inspection object, and the frictional heat generated by friction with the defect interfaces is detected by an infrared camera. A notable advantage of this method is its superior detection ability to detect closure defects that are often missed by other inspection methods. However, the conventional Sonic-IR method pressing an ultrasonic transducer directly against the inspection object may cause deformation or surface damage, depending on the material and shape of the object.

As a method to solve this problem, the immersion Sonic-IR testing, in which ultrasonic waves are input to the inspection object through a water, has been proposed. However, this method has a problem in defect detectability because of the small frictional heat at the defects. Large-diameter bubbles in water are difficult to collapse, and also cause scattering and attenuation of ultrasonic waves. In contrast, small-diameter bubbles are easily collapsed so that cavitation, which is a source of vibrational energy, is likely to occur.

The objective of this study is to investigate the influences of dissolved oxygen and microbubbles on the sound pressure level in the water and heat generation at defects in order to improve the defect detectability of the immersion Sonic-IR testing.

Keywords
Sonic-IR
non-destructive testing
cavitation
dissolved oxygen
microbubbles
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