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• Fe and B refine Ti64 microstructure for improved mechanical properties. • In-situ tests studied strengthening and fracture of modified Ti64 alloys. • In-situ observation reveals TiB whiskers interact with slip bands in tension. The Ti-6Al-4 V (Ti64) alloy, modified with Fe and B via laser-directed energy deposition (LDED), exhibits significant microstructural refinement and an enhanced synergy between strength and ductility. To elucidate the underlying deformation and fracture mechanisms, this work employs in-situ tensile testing, which uniquely captures real-time crack initiation and propagation compared with conventional ex-situ methods. The results reveal a distinct transition in fracture modes. Ti64 with coarse prior β grains and thick α laths undergoes double necking and transgranular fracture. Fe-refined Ti-6Al-4 V-3Fe (Ti643) exhibits single necking with a mixed intergranular–transgranular zigzag fracture, while Ti-6Al-4 V-3Fe-0.05B (Ti643B), further refined by in-situ TiB, shows homogeneous deformation and a dominant transgranular mode. In-situ observations highlight that TiB whiskers strongly bond to the matrix, where slip bands either bypass or penetrate TiB, producing progressive TiB fracture and interface dislocation pile-ups that enhance strain hardening. These mechanisms underpin the simultaneous improvements in strength and ductility in both Ti643 and Ti643B alloys, demonstrating the unique capability of in-situ testing to reveal fracture mode transitions and TiB–slip band interactions for the design of high-performance titanium alloys.
Yang et al. (Sat,) studied this question.