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.
CITATION STYLE
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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