研究目的
Investigating the impact of selective laser melting–induced defects in Ti–6Al–4V octet truss lattice material on its mechanical properties, focusing on the role of material microstructure and morphological variations.
研究成果
The study concludes that selective laser melting induces significant spatial variations of material properties within the lattice, with nodes possessing the highest average Young’s modulus. The combination of as-manufactured morphological defects induces a decrease of Young’s modulus, whereas material property defects induce an increase. The methodology presented allows for the prediction of the mechanical behavior of structures built with powder bed fusion processes.
研究不足
The study focuses on Ti–6Al–4V octet truss lattice materials fabricated with selective laser melting, and the findings may not be directly applicable to other materials or manufacturing processes. The impact of other sets of defects, such as porosity, was not explored in depth.
1:Experimental Design and Method Selection:
The study combines experimental and numerical methods to investigate defects in Ti–6Al–4V octet truss lattice materials fabricated with selective laser melting.
2:Sample Selection and Data Sources:
Samples were manufactured in 10 replicates with design parameters corresponding to a specific design point.
3:List of Experimental Equipment and Materials:
Equipment includes a selective laser melting machine (Renishaw AM-250), SEM (Hitachi UHR Cold-Emission FE-SEM SU8000), AFM (JPK Nano-wizard@3 Bio-Science), and micro-computed tomography (SkyScan 1172 high-resolution l-CT).
4:Experimental Procedures and Operational Workflow:
Samples were tested in compression to determine their compressive Young’s modulus. Surface, microstructural, material property, and morphological defects were characterized using SEM, EBSD analysis, AFM, and l-CT.
5:Data Analysis Methods:
Data analysis was performed with JPK data processing software for AFM and ITK-SNAP for l-CT-reconstructed data.
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