Lunt, DavidHo, AlistairDavis, Alec E.Harte, AllanMartina, Filomenoda Fonseca, João QuintaPrangnell, Philip2020-09-162020-09-162020-05-21Lunt D, Ho A, Davis A, et al., (2020) The effect of loading direction on strain localisation in wire arc additively manufactured Ti–6Al–4V, Materials Science and Engineering A: Structural Materials: Properties. Microstructures and Processing, Volume 788, June 2020, Article number 1396080921-5093https://doi.org/10.1016/j.msea.2020.139608https://dspace.lib.cranfield.ac.uk/handle/1826/15804Ti–6Al–4V microstructures produced by high deposition rate Wire Arc Additive Manufacturing (WAAM) can be both heterogeneous and anisotropic. Key features of the as-built microstructures include; large columnar ß grains, an α transformation texture inherited from the β solidification texture, grain boundary (GB) α colonies, and Heat Affected Zone (HAZ) banding. The effect of this heterogeneity on the local strain distribution has been investigated using Digital Image Correlation (DIC) in samples loaded in tension; parallel (WD), perpendicular (ND) and at 45° (45ND) to the deposited layers. Full-field surface strain maps were correlated to the underlying local texture. It is shown that loading perpendicular to the columnar β grains leads to a diffuse heterogeneous deformation distribution, due to the presence of regions containing hard, and soft, α microtextures within different parent β grains. The ‘soft’ regions correlated to multi-variant α colonies that did not contain a hard α variant unfavourably orientated for basal or prismatic slip. Far more severe strain localisation was seen in 45° ND loading at ‘soft’ β grain boundaries, where single variant α GB colonies favourably orientated for slip had developed during transformation. In comparison, when loaded parallel to the columnar ß grains, the strain distribution was relatively homogeneous and the HAZ bands did not show any obvious influence on strain localisation at the deposit layer-scale. However, when using high-resolution DIC, as well as more intense shear bands being resolved at the β grain boundaries during 45° ND loading, microscale strain localisation was observed in HAZ bands below the yield point within the thin white-etching α colony layer.enAttribution 4.0 Internationalhttp://creativecommons.org/licenses/by/4.0/Strain localisationDigital image correlationEBSDTensileAdditive manufacturingTitanium alloysThe effect of loading direction on strain localisation in wire arc additively manufactured Ti–6Al–4VArticle