Logo image
Delineating Oxidation Aspects of an Additively Manufactured Nanoprecipitation-Strengthened Al0.2Co1.5CrFeNi1.5Ti0.3 High-Entropy Alloy
期刊文章   開放取用(OA)

Delineating Oxidation Aspects of an Additively Manufactured Nanoprecipitation-Strengthened Al0.2Co1.5CrFeNi1.5Ti0.3 High-Entropy Alloy

P. Kumar, T.-N. Lam, P.-H. Chou, A.-C. Yeh, P.K. Liaw, E.-W. Huang 和 S.S. Singh
ACS Applied Nano Materials, 卷.9(23), 頁碼.10544-10555
2026
Web of Science ID: WOS:001782390300001

摘要

additive manufacturing high-entropy alloys oxidation oxide-film growth kinetics precipitation strengthening Additives Aluminum alloys Aluminum oxide Binary alloys Chromium alloys Chromium compounds Cobalt alloys Entropy Film growth Gas turbines Growth kinetics High temperature applications High-entropy alloys Oxide films Ternary alloys Titanium oxides Film growth kinetics High entropy alloy system High entropy alloys High-temperature application Nano precipitations Oxidation behaviours Oxide film growth Oxide layer Oxide-film growth kinetic Precipitation strengthening Oxidation
The recent perspective of multiprincipal element alloys (MPEAs), also known as high-entropy alloys (HEAs), has emerged as a very promising area for material design. Additive manufacturing (AM) strategies have also been noted to provide additional strength to HEA systems. In the selected dual-nanoprecipitation Al0.2Co1.5CrFeNi1.5Ti0.3 HEA system, an additional strength of approximately 300–400 MPa was achieved by adopting an additive manufacturing route as compared to its cast and wrought counterparts. However, the challenge of oxidation degradation always imposes a severe limitation for high-temperature applications in gas turbines, power plants, and aerospace components. Hence, ensuring material sustainability, longevity, and integrity for high-temperature applications inevitably requires the exploration of the oxidation behavior of alloys. In the current study, the oxidation performance of Al0.2Co1.5CrFeNi1.5Ti0.3 HEA, in as-printed as well as nanoprecipitation-strengthened aged states, was evaluated from 600°C to 1200°C. A comparative framework elucidating the mechanistic aspects and elemental redistribution of nanoprecipitates on oxidation behavior has been highlighted. In both the as-printed and aged states, the alloys followed subparabolic oxidation weight gain kinetics below 900°C. However, the thickness growth kinetics exhibited parabolic behavior above 900°C. The oxide layer exploration manifested the formation of a homogeneous Cr-oxide layer, which acts as a protective barrier against oxidation activity. The impact of atomic size on mobility also played a significant role in suppressing the formation of outer Al and Ti oxide layers, instead of having a lower reduction potential compared to Cr. © 2026 American Chemical Society.

檔案與連結 (2)

url
https://www.scopus.com/inward/record.uri?eid=2-s2.0-105041674587&doi=10.1021%2facsanm.6c00394&partnerID=40&md5=a5b32e52e1a008f00a2d10ea0c497513檢視
url
https://doi.org/10.1021/acsanm.6c00394檢視
已出版(紀錄版本) 開放

相關連結

InCites亮點

本研究成果之相關指標(擷取自 InCites Benchmarking & Analytics)

合作類型
機構合作
國際合作
引用書目主題
7 Engineering & Materials Science
7.12 Metallurgical Engineering
7.12.2236 High-Entropy Alloys
Web Of Science研究領域
Materials Science, Multidisciplinary
Nanoscience & Nanotechnology
ESI研究領域
Materials Science

詳細資料

Logo image