4.6 Article

Mechanical Characterization of an Additively Manufactured Inconel 718 Theta-Shaped Specimen

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SPRINGER
DOI: 10.1007/s11661-015-3186-8

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  1. Laboratory Directed Research and Development Program of Oak Ridge National Laboratory
  2. U. S. Department of Energy, Office of Energy Efficiency and Renewable Energy, Advanced Manufacturing Office [DE-AC05-00OR22725]
  3. UT-Battelle, LLC
  4. Scientific User Facilities Division, Office of Basic Energy Sciences, U.S. Department of Energy

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Two sets of theta-shaped specimens were additively manufactured with Inconel 718 powders using an electron beam melting technique with two distinct scan strategies. Light optical microscopy, mechanical testing coupled with a digital image correlation (DIC) technique, finite element modeling, and neutron diffraction with in situ loading characterizations were conducted. The cross-members of the specimens were the focus. Light optical micrographs revealed that different microstructures were formed with different scan strategies. Ex situ mechanical testing revealed each build to be stable under load until ductility was observed on the cross-members before failure. The elastic moduli were determined by forming a correlation between the elastic tensile stresses determined from FEM, and the elastic strains obtained from DIC. The lattice strains were mapped with neutron diffraction during in situ elastic loading; and a good correlation between the average axial lattice strains on the cross-member and those determined from the DIC analysis was found. The spatially resolved stresses in the elastic deformation regime are derived from the lattice strains and increased with applied load, showing a consistent distribution along the cross-member.

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