Modification of Cantor High Entropy Alloy by the Addition of Mo and Nb: Microstructure Evaluation, Nanoindentation-Based Mechanical Properties, and Sliding Wear Response Assessment

Karantzalis, Alexandros E., Poulia, Anthoula, Kamnis, Spyros, Sfikas, Athanasios, Fotsis, Anastasios and Georgatis, Emmanuel (2022) Modification of Cantor High Entropy Alloy by the Addition of Mo and Nb: Microstructure Evaluation, Nanoindentation-Based Mechanical Properties, and Sliding Wear Response Assessment. Alloys, 1 (1). pp. 70-92. ISSN 2674-063X

[img]
Preview
Text
alloys-01-00006-v2.pdf - Published Version
Available under License Creative Commons Attribution 4.0.

Download (7MB) | Preview
Official URL: https://doi.org/10.3390/alloys1010006

Abstract

The classic Cantor (FeCoCrMnNi) isoatomic high entropy alloy was modified by separate additions of Mo and Nb in an effort to optimize its mechanical properties and sliding wear response. It was found that the introduction of Mo and Nb modified the single phase FCC solid solution structure of the original alloy and led to the formation of new phases such as the BCC solid solution, σ-phase, and Laves, along with the possible existence of intermetallic phases. The overall phase formation sequence was approached by parametric model assessment and solidification considerations. Nanoindentation-based mechanical property evaluation showed that due to the introduction of Mo and Nb; the modulus of elasticity and microhardness were increased. Creep nanoindentation assessment revealed the beneficial action of Mo and Nb in increasing the creep resistance based on the stress sensitivity exponent, strain rate sensitivity, and critical volume for the dislocation nucleation considerations. The power law and power law breakdown were identified as the main creep deformation mechanisms. Finally, the sliding wear response was increased by the addition of Mo and Nb with this behavior obeying Archard’s law. A correlation between microstructure, wear track morphologies, and debris characteristics was also attempted.

Item Type: Article
Uncontrolled Keywords: high entropy alloys, microstructure, alloying, nanoindentation, creep, tribology
Subjects: H300 Mechanical Engineering
H700 Production and Manufacturing Engineering
Department: Faculties > Engineering and Environment > Mechanical and Construction Engineering
Depositing User: Rachel Branson
Date Deposited: 19 May 2022 10:59
Last Modified: 19 May 2022 11:00
URI: http://nrl.northumbria.ac.uk/id/eprint/49153

Actions (login required)

View Item View Item

Downloads

Downloads per month over past year

View more statistics