12th International Conference on Damage Assessment of Structures | |
Sub-surface defects detection of by using active thermography and advanced image edge detection | |
Tse, Peter W.^1 ; Wang, Gaochao^1 | |
Croucher Optical Nondestructive Testing Laboratory (CNDT), Department of Systems Engineering and Engineering Management, City University of Hong Kong, Tat Chee Avenue, Hong Kong, Hong Kong^1 | |
关键词: Active thermography; Canny edge detectors; Human visual inspection; Image edge detection; Industrial equipment; Non-destructive testing tool (NDT); Pixel intensities; Pulsed thermography; | |
Others : https://iopscience.iop.org/article/10.1088/1742-6596/842/1/012029/pdf DOI : 10.1088/1742-6596/842/1/012029 |
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来源: IOP | |
【 摘 要 】
Active or pulsed thermography is a popular non-destructive testing (NDT) tool for inspecting the integrity and anomaly of industrial equipment. One of the recent research trends in using active thermography is to automate the process in detecting hidden defects. As of today, human effort has still been using to adjust the temperature intensity of the thermo camera in order to visually observe the difference in cooling rates caused by a normal target as compared to that by a sub-surface crack exists inside the target. To avoid the tedious human-visual inspection and minimize human induced error, this paper reports the design of an automatic method that is capable of detecting subsurface defects. The method used the technique of active thermography, edge detection in machine vision and smart algorithm. An infrared thermo-camera was used to capture a series of temporal pictures after slightly heating up the inspected target by flash lamps. Then the Canny edge detector was employed to automatically extract the defect related images from the captured pictures. The captured temporal pictures were preprocessed by a packet of Canny edge detector and then a smart algorithm was used to reconstruct the whole sequences of image signals. During the processes, noise and irrelevant backgrounds exist in the pictures were removed. Consequently, the contrast of the edges of defective areas had been highlighted. The designed automatic method was verified by real pipe specimens that contains sub-surface cracks. After applying such smart method, the edges of cracks can be revealed visually without the need of using manual adjustment on the setting of thermo-camera. With the help of this automatic method, the tedious process in manually adjusting the colour contract and the pixel intensity in order to reveal defects can be avoided.
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