TY - JOUR
T1 - Novel candidate of metal-based thermal barrier coatings
T2 - High-entropy alloy
AU - Wang, Xiangzhao
AU - Yao, Haihua
AU - Yuan, Li
AU - Chen, Lijia
AU - Xu, Fengfeng
AU - Tan, Zhen
AU - He, Dingyong
AU - Yang, Yange
AU - Liu, Yanbo
AU - Zhou, Zheng
N1 - Publisher Copyright:
© 2023
PY - 2023/12/15
Y1 - 2023/12/15
N2 - To obtain compatible properties of low thermal conductivity and high thermal stability, Al0.6CoCrFeNiTi high-entropy alloy was designed as a novel candidate of metal-based thermal barrier coatings (MBTBCs). The corresponding high-entropy alloy coatings were fabricated by both high-velocity oxygen-fuel spraying (HVOF) and atmospheric plasma spraying (APS), and then the dependence of thermal insulation properties on microstructure was investigated. The both coatings exhibit a simple body-centered cubic (BCC) structure, but present obvious difference in microstructure and defect characters which relates to the evolution of in-flight particles. Benefit from the extremely low thermal conductivity, the APS-deposited coating can increase 13.24 °C of the surface temperature of piston crown and yield a temperature reduction of 19.00 °C along the thickness direction, which mean a positivity on enhancing the power efficiency of vehicle engines without sacrificing the strength of aluminum alloy components. In virtue of a decoupling method, the crucial effect of microstructure on thermal conductivity is disclosed, thus interpreting the excellent thermal insulation property of APS-deposited coating dominated by grain refinement and disordered BCC structure. The present results demonstrate a great potential of high-entropy alloy coatings as thermal barrier application and provide an inspiration for future works aiming to design these coatings to meet specific engineering needs.
AB - To obtain compatible properties of low thermal conductivity and high thermal stability, Al0.6CoCrFeNiTi high-entropy alloy was designed as a novel candidate of metal-based thermal barrier coatings (MBTBCs). The corresponding high-entropy alloy coatings were fabricated by both high-velocity oxygen-fuel spraying (HVOF) and atmospheric plasma spraying (APS), and then the dependence of thermal insulation properties on microstructure was investigated. The both coatings exhibit a simple body-centered cubic (BCC) structure, but present obvious difference in microstructure and defect characters which relates to the evolution of in-flight particles. Benefit from the extremely low thermal conductivity, the APS-deposited coating can increase 13.24 °C of the surface temperature of piston crown and yield a temperature reduction of 19.00 °C along the thickness direction, which mean a positivity on enhancing the power efficiency of vehicle engines without sacrificing the strength of aluminum alloy components. In virtue of a decoupling method, the crucial effect of microstructure on thermal conductivity is disclosed, thus interpreting the excellent thermal insulation property of APS-deposited coating dominated by grain refinement and disordered BCC structure. The present results demonstrate a great potential of high-entropy alloy coatings as thermal barrier application and provide an inspiration for future works aiming to design these coatings to meet specific engineering needs.
KW - High-entropy alloy
KW - Microstructure
KW - Thermal barrier coating
KW - Thermal conductivity
UR - http://www.scopus.com/inward/record.url?scp=85173990262&partnerID=8YFLogxK
U2 - 10.1016/j.surfcoat.2023.130087
DO - 10.1016/j.surfcoat.2023.130087
M3 - Article
AN - SCOPUS:85173990262
SN - 0257-8972
VL - 474
JO - Surface and Coatings Technology
JF - Surface and Coatings Technology
M1 - 130087
ER -