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Meeting Materials Science & Technology 2020
Symposium Additive Manufacturing: Microstructure and Material Properties of Titanium-based Materials
Presentation Title Environmental Degradation of AM-fabricated Ti6Al4V Alloy
Author(s) Guy Ben Hamu
On-Site Speaker (Planned) Guy Ben Hamu
Abstract Scope Additive manufacturing (AM) technologies enable rapid production of parts with complex geometry which cannot be shaped in other conventional methods. The AM-fabricated parts experience rapid solidification and high cooling rates; this leads to formation of atypical microstructure and directly affects the intrinsic properties of the printed part and on its environmental-assisted degradation. In this research, the environmental degradation by means of corrosion and hydrogen embrittlement (HE) of Ti6Al4V produced by AM technologies will be presented. Hydrogen presence is unavoidable in most manufacturing processes and services. Hydrogen can significantly deteriorate mechanical properties and lead to unexpected failure. The hydrogen interaction with the material is strongly dependent on the microstructure, the amount of adsorbed hydrogen and its location in the material. The aim of the research is to provide detail information about the environmental degradation of AM-Ti6Al4V in aggressive service conditions for further application in aircraft, automotive, and marine industries.

OTHER PAPERS PLANNED FOR THIS SYMPOSIUM

Correlating Processing, Structure and Properties for Additively Manufactured Ti-6Al-4V
Dynamic Transformations In AM Ti6Al4V Alloy
Environmental Degradation of AM-fabricated Ti6Al4V Alloy
Fracture of additively manufactured Ti-6Al-4V under multiaxial loading: experiments and modeling
Influence of Different Post-printing Treatments on the In Vitro Biocompatibility of 3D Generated Titanium Plates
Mechanical properties, fracture surface and microstructure of additively manufactured Ti6Al4V
Microstructural Modeling of β to α Transformation Morphologies in Multi-layered Laser Wire Additively Manufactured Ti-6Al-4V Parts
Multiscale Mechanical Studies of Dual-phase Titanium Alloys Made by Additive Manufacturing
Study of Effects from Post-processing on the Fatigue Performances of Laser Powder Bed Fusion Built Parts Using Hydride-dehydride Ti-6Al-4V Powders
Study the Effect of Thermal Gradients on the Microstructure and Mechanical Properties of Electron Beam Melting Ti-6Al-4V Builds
Understanding Microstructure and Mechanical Property Variations in Lase-based Powder Bed Fusion of Ti-6Al-4V and their Heat Treatment Design

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