August 2026

Journal

Part-scale evolution of fine-scale microstructural heterogeneity in solid-state additive manufacturing

By:
Franz, Cole E; Wing, Benjamin J; Fancher, Christopher M; Drakopoulos, Michael; Zhong, Zhong; Vo, Nghia; Babu, Sudarsanam; Page, Katharine
Journal Name:
npj Advanced Manufacturing
Volume:
TBD
Publication Date:
August 25, 2026
View DOI Listing:
https://doi.org/10.1038/s44334-026-00093-w

Abstract

Current solid-state additive manufacturing methods, refined through costly and time-consuming trial and error, have spurred interest in computational models that replicate material behavior under typical thermomechanical conditions (e.g., strain-rate ~ 102 s−1). These models, however, struggle to capture time-dependent microstructural evolution. In this work, Additive Friction-Stir Deposition (AFSD) is used as a representative case study for part-scale quantification of microstructure evolution at a fine spatial resolution (200 μm) by examining a liquid-nitrogen-cooled stop-action build via energy-dispersive X-ray diffraction coupled with a multi-channel detector. These results inform modeling efforts by linking process asymmetry to stored plastic strain, residual elastic strain, and texture development, and unlike current state-of-the-art characterization methods (e.g., EBSD or neutron diffraction), this approach provides both the spatial resolution and collection efficiency necessary to quantify fine-scale microstructural heterogeneity over large component volumes. As such, this technique provides essential validation data for computational models, e.g., crystal plasticity, enabling future prediction of heterogeneous behavior in AFSD and other additive manufacturing processes.


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