4.6 Article

Understanding the impact of texture on the micromechanical anisotropy of laser powder bed fused Inconel 718

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JOURNAL OF MATERIALS SCIENCE
卷 57, 期 31, 页码 15036-15058

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SPRINGER
DOI: 10.1007/s10853-022-07499-9

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  1. BAM internal project AGIL

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The manufacturability of metallic alloys using laser-based additive manufacturing methods has improved significantly in the past decade. However, the microstructures of these alloys, caused by local melting and solidification, possess hierarchical structures and crystallographic textures that result in mechanical anisotropy and pose challenges for diffraction-based residual stress determination.
The manufacturability of metallic alloys using laser-based additive manufacturing methods such as laser powder bed fusion has substantially improved within the last decade. However, local melting and solidification cause hierarchically structured and crystallographically textured microstructures possessing large residual stress. Such microstructures are not only the origin of mechanical anisotropy but also pose metrological challenges for the diffraction-based residual stress determination. Here we demonstrate the influence of the build orientation and the texture on the microstructure and consequently the mechanical anisotropy of as-built Inconel 718. For this purpose, we manufactured specimens with [001]/[011]-, [001]- and [011]/[11 (1) over bar]-type textures along their loading direction. In addition to changes in the Young's moduli, the differences in the crystallographic textures result in variations of the yield and ultimate tensile strengths. With this in mind, we studied the anisotropy on the micromechanical scale by subjecting the specimens to tensile loads along the different texture directions during in situ neutron diffraction experiments. In this context, the response of multiple lattice planes up to a tensile strain of 10% displayed differences in the load partitioning and the residual strain accumulation for the specimen with [011]/[(1) over bar 11]-type texture. However, the relative behavior of the specimens possessing an [001] /[011]- and [001]-type texture remained qualitatively similar. The consequences on the metrology of residual stress determination methods are discussed.

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