Numerical Method for Internal Structure and Surface Evaluation in Coatings

Численный метод оценки внутренней структуры и поверхности покрытий
Tomas Kačinskas, Saulius Baskutis
2025-08-13

MATLAB image processingcoating indication detectioninternal porositynon-destructive testingradiographic testing
This study introduces a MATrix LABoratory (MATLAB, version R2024b, update 1 (24.2.0.2740171))-based automated system for the detection and measurement of indication areas in coated surfaces, enhancing the accuracy and efficiency of quality control processes in metal, polymeric and thermoplastic coatings. The developed code identifies various indication characteristics in the image and provides numerical results, assesses the size and quantity of indications and evaluates conformity to ISO standards. A comprehensive testing method, involving non-destructive penetrant testing (PT) and radiographic testing (RT), allowed for an in-depth analysis of surface and internal porosity across different coating methods, including aluminum-, copper-, polytetrafluoroethylene (PTFE)- and polyether ether ketone (PEEK)-based materials. Initial findings had a major impact on indicating a non-homogeneous surface of obtained coatings, manufactured using different technologies and materials. Whereas researchers using non-destructive testing (NDT) methods typically rely on visual inspection and manual counting, the system under study automates this process. Each sample image is loaded into MATLAB and analyzed using the Image Processing Tool, Computer Vision Toolbox, Statistics and Machine Learning Toolbox. The custom code performs essential tasks such as image conversion, filtering, boundary detection, layering operations and calculations. These processes are integral to rendering images with developed indications according to NDT method requirements, providing a detailed visual and numerical representation of the analysis. RT also validated the observations made through surface indication detection, revealing either the absence of hidden defects or, conversely, internal porosity correlating with surface conditions. Matrix and graphical representations were used to facilitate the comparison of test results, highlighting more advanced methods and materials as the superior choice for achieving optimal mechanical and structural integrity. This research contributes to addressing challenges in surface quality assurance, advancing digital transformation in inspection processes and exploring more advanced alternatives to traditional coating technologies and materials.
1
A MATLAB R2024b automated system detects and measures coating indication areas, replacing visual inspection and manual counting with numerical analysis.
2
Combined penetrant and radiographic testing assessed surface and internal porosity in aluminum-, copper-, PTFE-, and PEEK-based coatings.
3
Matrix and graphical comparisons indicated that more advanced coating methods and materials provide better prospects for mechanical and structural integrity.
4
Testing revealed non-homogeneous coating surfaces across technologies and materials, with radiography confirming either absent hidden defects or internal porosity correlated with surface indications.
5
The system quantifies indication size and quantity, generates processed visual representations, and evaluates coating conformity with ISO standards.

Metal, polymeric, and thermoplastic coatings, including aluminum-, copper-, PTFE-, and PEEK-based coatings

Surface indications and internal porosity, including their detection, measurement, quantity, size, spatial correspondence, and conformity with ISO standards

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2025-08-13
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Tomas Kačinskas
Saulius Baskutis
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