Spinodal Decomposition of B2‐phase and Formation of Cr‐Rich Nano‐precipitates in AlCoCrFeNi2.1 Eutectic High‐Entropy Alloy

Author:

Charkhchian Javad1,Zarei-Hanzaki Abbas1,Moshiri Ali1,Abedi Hamid Reza2ORCID,Schwarz Tim M.3,Lawitzki Robert3,Schmitz Guido3,Chadha Kanwal4,Aranas Clodualdo4,Shen Jiajia5,Oliveira João Pedro56

Affiliation:

1. Hot Deformation and Thermomechanical Processing Laboratory of High Performance Engineering Materials School of Metallurgy and Materials Engineering College of Engineering University of Tehran P.O. Box: 11155‐4563 Tehran Iran

2. School of Metallurgy and Materials Engineering Iran University of Science and Technology (IUST) 16846‐13114 Tehran Iran

3. Chair of Materials Physics Institute for Materials Science University of Stuttgart Heisenbergstr. 3 70569 Stuttgart Germany

4. Mechanical Engineering University of New Brunswick Fredericton NB E3B 5A3 Canada

5. UNIDEMI Department of Mechanical and Industrial Engineering NOVA School of Science and Technology Universidade NOVA de Lisboa 2829-516 Caparica Portugal

6. CENIMAT|I3N, Department of Materials Science NOVA School of Science and Technology Universidade NOVA de Lisboa 2829‐516 Caparica Portugal

Abstract

Herein, the occurrence of a B2‐phase separation and formation of Cr‐rich nano‐precipitates during the solidification process of AlCoCrFeNi2.1 eutectic high‐entropy alloy is addressed. Toward this end, various advanced characterizations, including high‐resolution transmission electron microscopy and atom probe tomography combined with thermodynamic calculations, are employed. The as‐solidified microstructure is composed of face‐centered cubic (FCC) dendrites and interdendritic regions consisting of a eutectic mixture of FCC and body‐centered cubic (BCC) phases. The presence of uniformly distributed Cr‐rich nano‐precipitates is traced through the BCC B2 phase in the interdendritic area. Regarding the occurrence of upward diffusion and Gibbs free energy variation, the formation of Cr‐rich nano‐precipitates is attributed to the spinodal decomposition where the critical temperature of 800 °C is passed behind during the solidification process. The formation of dense dislocation array in the interdendritic region due to thermal stress induced during solidification is introduced as a pathway for diffusion of alloying elements in the course of cooling stage.

Funder

Deutsche Forschungsgemeinschaft

Publisher

Wiley

Subject

Condensed Matter Physics,General Materials Science

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