Rapid thermokinetics driven nanoscale vanadium clustering within martensite laths in laser powder bed fused additively manufactured Ti6Al4V

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Abstract

This paper reports the computational approach adopted for thermo-diffusion kinetics to rationalize homogenously distributed nanoscale vanadium-rich clusters formed within the martensite laths of Ti6Al4V alloy printed using laser powder bed fusion at an energy density of 52.08 J/mm3. The computations were conducted using a finite element method based thermal model, which predicted extremely rapid thermokinetics associated with the thermal cycles experienced at any given location of LPBF-printed Ti6Al4V. The numerically estimated effective V diffusion length of 6.61 nm indicated kinetic-limited diffusion resulting in V nano-clusters and are in good agreement with the atom probe tomography data giving a value of half the inter-cluster spacing of 7 nm. IMPACT STATEMENT: The computational approach adopted for thermo-diffusion kinetics comprehends homogeneously distributed vanadium nano-clusters within martensite laths of Ti6Al4V, printed by laser powder bed fusion, due to repetitive and extremely rapid thermokinetics.

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Pantawane, M. V., Dasari, S., Mantri, S. A., Banerjee, R., & Dahotre, N. B. (2020). Rapid thermokinetics driven nanoscale vanadium clustering within martensite laths in laser powder bed fused additively manufactured Ti6Al4V. Materials Research Letters, 8(10), 383–389. https://doi.org/10.1080/21663831.2020.1772396

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