Article, 2024

Formation of primary intermetallic phases in the interaction of Fe-containing melts of recycled Al-Si alloys with AlO and AlO-C filter materials: A µ-CT study

Journal of Materials Science and Technology, ISSN 1005-0302, Volume 184, Pages 88-100, 10.1016/j.jmst.2023.09.047

Contributors

Becker H. (Corresponding author) [1] [2] Fankhanel B. 0000-0002-8910-5858 [1] Charitos A. 0000-0003-2099-4957 [1] Baier S. 0000-0002-4824-4413 [2] Leineweber A. 0000-0002-8948-8975 [1] Pantleon W. 0000-0001-6418-6260 [2]

Affiliations

  1. [1] TU Bergakademie Freiberg
  2. [NORA names: Germany; Europe, EU; OECD];
  3. [2] Technical University of Denmark
  4. [NORA names: DTU Technical University of Denmark; University; Denmark; Europe, EU; Nordic; OECD]

Abstract

Fe is the most detrimental impurity element in recycled Al-Si alloys due to the formation of brittle, primary, Fe-containing, intermetallic particles during solidification. Their removal from the Al-Si melts e.g. by filtration can reduce the Fe content. New active filter materials can facilitate the formation of these particles for their removal and contribute to the production of high-quality, recycled Al-Si alloys. The interaction of the alloy with the filter material can lead to modification of the thermodynamics of the alloy or of the kinetics of the particle formation. Time-resolved, three-dimensional microstructural investigations have been carried out to study the formation of primary intermetallic particles in Al7.1Si1.5Fe and Al7.1Si0.75Fe0.75Mn alloy melts in contact with AlO and AlO-C filter substrate material during a melt conditioning treatment at 620 °C. The microstructures, in particular the primary intermetallic particles α and α, have been characterized by computed tomography (CT) and supplementary scanning electron microscopy (SEM). As expected by thermodynamics, the total volume fraction of primary particles remains unchanged by the interaction with the substrate materials. However, kinetic advantages for Fe-removal efficiency can be achieved by an accelerated and preferred selective particle formation in contact with the AlO-C material. Furthermore, particle formation is discussed in view of its different stages: nucleation, growth, and ripening.

Keywords

Aluminum alloys, Intermetallic phases, Scanning electron microscopy, Solidification, X-ray computed tomography

Funders

  • Styrelsen for Forskning og Innovation
  • Deutsche Forschungsgemeinschaft

Data Provider: Elsevier