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Mechanical properties of two novel non-equiatomic Zr-Hf-Ti-Cu-Ni-Co-Al High Entropy Alloys with high glass forming ability

  • Sergio Gonzalez
  • , Stefan Wurster
  • , C. G. Garay-Reyes
  • , A. Hurtado-Macias
  • , Parthiban Ramasamy
  • , D. Oleszak
  • , Christoph Gammer
  • , Konda Gokuldoss Prashanth
  • , A. Martinez-Garcia
  • , Jürgen Eckert
  • , R. Martinez-Sanchez
  • Universidad Carlos III de Madrid
  • Erich Schmid Institute of Materials Science
  • Laboratorio Nacional de Nanotecnología
  • Warsaw University of Technology
  • Tallinn University of Technology
  • VIT University
  • Universidad Autonoma de San Luis Potosi

Research output: Contribution to journalArticleResearchpeer-review

Abstract

This manuscript aims to study the microstructure and mechanical properties of two novel non-equiatomic Zr 27.5Hf 11.1Ti 6.2Cu 32.4Ni 10.7Co 5.5Al 6.6 and Zr 29.7Hf 16.8Ti 5.2Cu 6.3Ni 12.1Co 8.4Al 21.5 at% High Entropy Alloys (HEAs) obtained at two different average cooling rates (∼1000 K/s and ∼250 K/s, for 2 and 4 mm diameter samples, respectively). For each casted sample, the cooling rate also changes with the distance from the centre (lowest) to the edge (fastest) thus enabling to explore the evolution of the microstructures at a wide range of cooling rates. For the Zr 27.5Hf 11.1Ti 6.2Cu 32.4Ni 10.7Co 5.5Al 6.6 alloy, the mechanical properties variation between the highest and lowest cooled regions, from the narrow amorphous ring edge (nanoindentation hardness H = 8.2 ± 0.42 GPa) to the centre of the largest sample (H = 8.8 ± 0.35 GPa), is very small. This is attributed to the small microstructural differences, mostly formation of a solid solution BCC crystalline phase, although with some HCP phase. The amorphous phase is in a very relaxed state, about to crystallize. However, for the Zr 29.7Hf 16.8Ti 5.2Cu 6.3Ni 12.1Co 8.4Al 21.5 alloy, larger microstructural differences, and therefore mechanical properties, between the highest and lowest cooled regions are detected. From a fully amorphous region far from equilibrium (H = 8.5 ± 0.44 GPa) to a solid solution of BCC (∼80 % vol.) and HCP (∼20 % vol.) crystalline phase (H = 10.8 ± 0.6 GPa) and free from brittle intermetallic phases. This suggests, the latter alloy is a nearer eutectic composition and therefore the microstructure is more sensitive to changes of the cooling rate, something to take into consideration when designing microstructures for engineering applications.
Original languageEnglish
Article number180196
Number of pages11
JournalJournal of alloys and compounds
Volume2025
Issue numberVolume 1024, 20 April
DOIs
Publication statusPublished - 2 Apr 2025

Bibliographical note

Publisher Copyright: © 2025 Elsevier B.V.

Keywords

  • Metallic glasses
  • Rapid-solidification, Quenching
  • Scanning electron microscopy, SEM
  • X-ray diffraction

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