High-Entropy Alloy Coatings Deposited by Thermal Spraying: A Review of Strengthening Mechanisms, Performance Assessments and Perspectives on Future Applications

Author:

Bhaskaran Nair Rakesh12ORCID,Supekar Raunak1,Morteza Javid Seyyed3,Wang Wandong4,Zou Yu4,McDonald André2,Mostaghimi Javad3ORCID,Stoyanov Pantcho5

Affiliation:

1. Department of Mechanical, Industrial and Aerospace Engineering, Concordia University, Montreal, QC H3G 2W1, Canada

2. Department of Mechanical Engineering, University of Alberta, Edmonton, AB T6G 1H9, Canada

3. Department of Mechanical, and Industrial Engineering, University of Toronto, Toronto, ON M5S 3G8, Canada

4. Department of Material Science and Engineering, University of Toronto, Toronto, ON M5S 3G8, Canada

5. Department of Chemical and Materials Engineering, Concordia University, Montreal, QC H3G 2W1, Canada

Abstract

Thermal spray deposition techniques have been well-established, owing to their flexibility in addressing degradation due to wear and corrosion issues faced due to extreme environmental conditions. With the adoption of these techniques, a broad spectrum of industries is experiencing continuous improvement in resolving these issues. To increase industrial-level implementation, state-of-the-art advanced materials are required. High-entropy alloys (HEAs) have recently gained considerable attention within the scientific community as advanced materials, mainly due to their exceptional properties and desirable microstructural features. Unlike traditional material systems, high-entropy alloys are composed of multi-component elements (at least five elements) with equimolar or nearly equimolar concentrations. This allows for a stable microstructure that is associated with high configurational entropy. This review article provides a critical assessment of different strengthening mechanisms observed in various high-entropy alloys developed by means of deposition techniques. The wear, corrosion, and oxidation responses of these alloys are reviewed in detail and correlated to microstructural and mechanical properties and behavior. In addition, the review focused on material design principles for developing next-generation HEAs that can significantly benefit the aerospace, marine, oil and gas, nuclear sector, etc. Despite having shown exceptional mechanical properties, the article describes the need to further evaluate the tribological behavior of these HEAs in order to show proof-of-concept perspectives for several industrial applications in extreme environments.

Funder

Natural Science and Engineering Research Council of Canada

Publisher

MDPI AG

Subject

General Materials Science,Metals and Alloys

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