Automated Defect Detection and Decision-Support in Gas Turbine Blade Inspection

Автоматическое обнаружение дефектов и поддержка принятия решений при инспекции лопаток газовых турбин
Jonas Aust, Sam Shankland, Dirk Pons, Ramakrishnan Mukundan, Antonija Mitrović
2021-01-26

automated defect detectiondecision-support systemgas turbine blade inspectionimage processingmorphological defect quantification
Background—In the field of aviation, maintenance and inspections of engines are vitally important in ensuring the safe functionality of fault-free aircrafts. There is value in exploring automated defect detection systems that can assist in this process. Existing effort has mostly been directed at artificial intelligence, specifically neural networks. However, that approach is critically dependent on large datasets, which can be problematic to obtain. For more specialised cases where data are sparse, the image processing techniques have potential, but this is poorly represented in the literature. Aim—This research sought to develop methods (a) to automatically detect defects on the edges of engine blades (nicks, dents and tears) and (b) to support the decision-making of the inspector when providing a recommended maintenance action based on the engine manual. Findings—For a small sample test size of 60 blades, the combined system was able to detect and locate the defects with an accuracy of 83%. It quantified morphological features of defect size and location. False positive and false negative rates were 46% and 17% respectively based on ground truth. Originality—The work shows that image-processing approaches have potential value as a method for detecting defects in small data sets. The work also identifies which viewing perspectives are more favourable for automated detection, namely, those that are perpendicular to the blade surface.
1
Blade views perpendicular to the surface were identified as more favorable for automated defect detection than other viewing perspectives.
2
False-positive and false-negative rates were 46% and 17%, respectively, relative to ground truth.
3
The combined detection and decision-support system achieved 83% accuracy in detecting and locating defects across a test sample of 60 blades.
4
The study developed an automated image-processing system to detect engine-blade edge defects, including nicks, dents, and tears, in data-sparse settings.
5
The system quantified morphological defect characteristics, including defect size and location, to support inspection decisions.

Gas turbine engine blades, specifically their edges inspected for nicks, dents, and tears

Automated image-based detection and localization of blade-edge defects, quantification of their size and location, and inspector decision support for recommended maintenance actions under sparse-data conditions

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2021-01-26
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Authors
Jonas Aust
Sam Shankland
Dirk Pons
Ramakrishnan Mukundan
Antonija Mitrović
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