Characterisation of Fe Distribution in the Liquid–Solid Boundary of Al–Zn–Mg–Si Alloy Using Synchrotron X-ray Fluorescence Microscopy

Author:

Tian He1,Qu Dongdong1ORCID,Setargew Nega2,Parker Daniel J.2,Paterson David J.3ORCID,StJohn David1ORCID,Nogita Kazuhiro1ORCID

Affiliation:

1. School of Mechanical and Mining Engineering, The University of Queensland, St Lucia, QLD 4072, Australia

2. Product Innovation and Technology, BlueScope Steel Australia, Port Kembla, NSW 2505, Australia

3. Australian Synchrotron, ANSTO, Clayton, VIC 3168, Australia

Abstract

Al–Zn–Mg–Si alloy coatings have been developed to inhibit the corrosion of cold-rolled steel sheets by offering galvanic and barrier protection to the substrate steel. It is known that Fe deposited from the steel strip modifies the microstructure of the alloy. We cast samples of Al–Zn–Mg–Si coating alloys containing 0.4 wt% Fe and directionally solidified them using a Bridgman furnace to quantify the effect of this Fe addition between 600 °C and 240 °C. By applying a temperature gradient, growth is encouraged, and by then quenching the sample in coolant, the microstructure may be frozen. These samples were analysed using scanning electron microscopy (SEM) and energy dispersive X-ray spectroscopy (EDS) to determine the morphological effects of the Fe distribution across the experimental temperature range. However, due to the sub 1 wt% concentration of Fe, synchrotron X-ray fluorescence microscopy (XFM) was applied to quantitatively confirm the Fe distribution. Directionally solidified samples were scanned at 7.05 keV and 18.5 keV using X-ray fluorescence at the Australian Synchrotron using the Maia array detector. It was found that a mass nucleation event of the Fe-based τ6 phase occurred at 495 °C following the nucleation of the primary α-Al phase as a result of a peritectic reaction with remaining liquid.

Funder

ARC Linkage Project

Australian Synchrotron

Publisher

MDPI AG

Reference19 articles.

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2. Setargew, N., Hodges, J., and Parker, D. Dross Intermetallic Compound Formation and the Alloy Layer in 55%Al-Zn Coating. Proceedings of the Steel Research Hub Symposium, University of Wollongong, Hong Kong, China.

3. Recovery of aluminum–zinc alloy from 55%Al–Zn dross by supergravity separation;Wang;Rev. Sci. Instrum.,2022

4. On the Phases Occurring in Alloys of Aluminium with Copper, Magnesium, Manganese, Iron, and Silicon;Phragmen;J. Inst. Met.,1950

5. β-Al4.5FeSi: A Combined Synchrotron Powder Diffraction, Electron Diffraction, High-Resolution Electron Microscopy and Single-Crystal X-ray Diffraction Study of a Faulted Structure;Hansen;Acta Cryst. B,1998

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