TY - JOUR
T1 - Image segmentation and analysis for microstructure and property evaluations on Ti6Al4V fabricated by selective laser melting
AU - Miyazaki, Shiho
AU - Kusano, Masahiro
AU - Bulgarevich, Dmitry S.
AU - Kishimoto, Satoshi
AU - Yumoto, Atsushi
AU - Watanabe, Makoto
N1 - Funding Information:
Part of this work was supported by JSPS KAKENHI Grant Number 17H01369.
PY - 2019
Y1 - 2019
N2 - The selective laser melting could be employed in fabrication of near-net shape products for airplane and biomedical applications from Ti6Al4V alloy, which is difficult-to-process material. In this method, the localized laser irradiation forms the unique Ti6Al4V microstructures which correspond to the laser scanning patterns and local thermal history as it could be observed from sample cross-sections with OM or SEM. In this study, the effects of heat treatments on mechanical properties of Ti6Al4V samples produced by selective laser melting are discussed based on quantitative analysis of microstructures with image processing and machine learning tools. It was found that microstructures of heat-treated samples retained their original morphologies and secondary ¡ phase precipitated regularly at ¢ grain boundaries with increased treatment time. These microstructures were appropriately segmented and classified. Each ¡ particle geometrical characteristics were successfully extracted and evaluated by image analysis. Importantly, the hardness of the heat-treated samples was lower compared to that of as-built ones and it tended to increase with the area fraction of ¡ phase, the ¡ particle width, and the nearest neighbor distance between ¡ particles.
AB - The selective laser melting could be employed in fabrication of near-net shape products for airplane and biomedical applications from Ti6Al4V alloy, which is difficult-to-process material. In this method, the localized laser irradiation forms the unique Ti6Al4V microstructures which correspond to the laser scanning patterns and local thermal history as it could be observed from sample cross-sections with OM or SEM. In this study, the effects of heat treatments on mechanical properties of Ti6Al4V samples produced by selective laser melting are discussed based on quantitative analysis of microstructures with image processing and machine learning tools. It was found that microstructures of heat-treated samples retained their original morphologies and secondary ¡ phase precipitated regularly at ¢ grain boundaries with increased treatment time. These microstructures were appropriately segmented and classified. Each ¡ particle geometrical characteristics were successfully extracted and evaluated by image analysis. Importantly, the hardness of the heat-treated samples was lower compared to that of as-built ones and it tended to increase with the area fraction of ¡ phase, the ¡ particle width, and the nearest neighbor distance between ¡ particles.
KW - Heat treatment
KW - Image analysis
KW - Microstructure
KW - Selective laser melting
KW - Ti6Al4V
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U2 - 10.2320/matertrans.MBW201806
DO - 10.2320/matertrans.MBW201806
M3 - Article
AN - SCOPUS:85063474803
SN - 1345-9678
VL - 60
SP - 561
EP - 568
JO - Materials Transactions
JF - Materials Transactions
IS - 4
ER -