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Influence of Zr on Al-Ti-B-Based Grain Refiners in AlSiMgCuZr Alloy.

作者信息

Kapinos Dawid, Augustyn Bogusław, Boczkal Sonia, Limanówka Kamila, Płonka Bartłomiej, Garbacz-Klempka Aldona, Piękoś Marcin, Kozana Janusz

机构信息

Łukasiewicz Research Network-Institute of Non-Ferrous Metals, Light Metals Centre, Piłsudskiego 19, 32-050 Skawina, Poland.

Faculty of Foundry Engineering, AGH University of Krakow, Reymonta 23, 30-059 Cracow, Poland.

出版信息

Materials (Basel). 2025 Jun 24;18(13):3000. doi: 10.3390/ma18133000.

Abstract

One of the most effective methods of improving the properties of aluminium alloys is grain refining using Al-Ti-B master alloys. In contrast, zirconium is a key alloying element, used mainly in 2xxx and 7xxx series aluminium alloys, where it contributes to dispersion enhancement and reduces the rate of dynamic recrystallisation. However, even trace amounts of zirconium-just a few hundredths of ppm-significantly reduce the performance of Al-Ti-B grain refiners, a phenomenon known as 'Zr poisoning'. This study investigates the impact of holding time and the level of Al-5Ti-1B addition on the microstructure and properties of an AlMgSi(Cu) alloy containing 0.15 wt.% Zr, cast as 7-inch DC billets. The structure and phase distribution were characterised using optical microscopy (OM), scanning electron microscopy (SEM) with energy-dispersive spectroscopy (EDS), and transmission electron microscopy (TEM). Grain size and morphology were evaluated through macrostructure analysis (etched cross-sections and polarised light microscopy), while chemical and elemental distributions were analysed via SEM-EDS and STEM-EDS mapping. Additionally, Brinell hardness measurements were conducted across the billet diameter to assess the correlation between grain size and mechanical properties. The results show that reducing holding time and increasing the Al-5Ti-1B addition improves grain refinement efficiency despite the presence of Zr. The finest grain structure (150-170 μm) and most homogeneous hardness distribution were achieved when the grain refiner was continuously fed during casting at 80 ppm B. These findings are supported by the literature and contribute to a deeper understanding of the Zr poisoning effect and its mitigation through optimized casting practice.

摘要
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0391/12250710/2893d15743ad/materials-18-03000-g001.jpg

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