Évènements

23 Oct
23/10/2024 21:00

Sciences & Société

Soutenance de thèse : Alexandru TECHERES

23/10/2024 à 21h (CEST) / 24/10/2024 à 6h (AEDT)

Understanding the role of impurities in the precipitation kinetics in Al-Sc-Zr alloys

Doctorant : Alexandru TECHERES

Laboratoire INSA : MATEIS

Ecole doctorale : ED34 : Matériaux de Lyon

The strengthening of Al alloys via Sc and Zr has been well documented in the literature. The formation of L12 Al3Sc and Al3Zr leads to improvements of mechanical properties through formation of precipitates during artificial ageing. However, the scarcity and cost of Sc have always been a challenge towards adoption on an industrial scale. Nonetheless, new mineral deposits discovered in Australia, together with novel processing methods create the expectation that the price of Sc will become more accessible.
In the context of a circular economy, recycling is the norm. However, this introduces impurities in the recycled material which originate from the imperfect sorting of scraps. The precipitation kinetics of Al3Sc in high purity, controlled composition Al alloys is well understood. However, the precipitation process in the presence of impurities such as Fe and Si has not been studied.
Therefore, the problematic of the current thesis focuses of the effect of impurities on the precipitation kinetics in Al-Sc-Zr during artificial ageing at various temperatures. Previous reports in the literature indicate an accelerating effect of Si and there are limited reports on the effect of Fe.
Using a combinatorial method, in this work we investigate the effect of Si on the precipitation kinetics via samples with a macroscopic composition gradient (also called diffusion couples). Additionally, two sets of samples are investigated with different Fe concentration to comparatively study the effect of Fe. The precipitation kinetics is observed indirectly via small angle x-ray scattering (SAXS) and hardness measurements across the samples with macroscopic composition gradient. Furthermore, advanced characterisation techniques such as Scanning Electron Microscopy, Transmission Electron Microscopy and Atom Probe Tomography are employed to analyse conditions determined as critical during the ageing.
A strong acceleration effect was observed, with increased Si, agreeing with previous reports. However, a saturation effect was identified, which seems to depend on the ageing temperature. This is discussed as a function of Si-vacancy interaction in the precipitation of Al3Sc. Modelling in a Kampmann-Wagner Numerical framework was performed assuming various numbers of heterogenous nucleation sites. To match experimental results, it was required to increase the diffusion coefficient of Sc in the presence of Si, further highlighting the acceleration effect.
It was identified via TEM and APT that the presence of Si leads to smaller mean radius and larger volume fraction of precipitates, which promote larger increments of the mechanical properties. Furthermore, it was observed that Si replaces Al in the structure of the precipitates and that the concentration of Si in the precipitates increases with the concentration in the solid solution.
Finally, it was observed that Fe can replace Al in the precipitates too. Moreover, in the presence of Fe, Si is found in higher concentrations inside the precipitate than when Fe is virtually absent. However, only a minimal difference is observed in terms of hardening between the alloys with different Fe content and only early in the ageing process. Analytical strengthening calculations seem to predict well the hardening in a Fe-free alloy but poorly in the Fe-rich one. This indirectly suggests that Fe has an effect on the precipitation kinetics, but more investigations are needed to fully understand the effect of Fe on precipitation in these alloys.

 

Additional informations

  • https://deakin.zoom.us/j/83683315974?pwd=v9dIuNeebiCxC8etah5ItcjBK5q6Ue.1 (Waurn Ponds, Australia)

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