Back to Search Start Over

Thermal transport property correlated with microstructure transformation and structure evolution of Fe-based amorphous coating.

Authors :
Yao, Haihua
Xu, Fengfeng
Wang, Xiangzhao
Zeng, Yong
Tan, Zhen
He, Dingyong
Yang, Yange
Liu, Yanbo
Zhou, Zheng
Source :
Surface & Coatings Technology. Mar2023, Vol. 457, pN.PAG-N.PAG. 1p.
Publication Year :
2023

Abstract

The correlation between the thermal transport properties and microstructure features of amorphous coatings is crucial for reliable thermal insulation applications. In this work, an Fe 48 Cr 15 Mo 14 C 15 B 6 Y 2 amorphous coating prepared by high-velocity oxygen-fuel spraying (HVOF) was employed to reveal this relationship under long-term heating. From the combined effects of the amorphous phase and unique coating structure, the proposed coating exhibits an extremely low thermal conductivity of 1.92 W/(m∙K), granting a significant potential for being as metal-based thermal barrier coatings. Isothermal annealing experiments below the glass transition temperature demonstrate that the thermal insulation property can maintain stability with prolonged annealing time, despite a slight degradation relative to the as-sprayed coating which is ascribed to structural relaxation. Although nearly full crystallization can be slowly induced by annealing at the critical temperature of 600 °C, the thermal conductivity displays a distinct two-stage variation with annealing time, which is primarily attributed to the sluggish sintering of the coating structure. Moreover, grain growth and rapid structural sintering result in a drastic degradation of thermal insulation in the early stage of annealing at 850 °C, whereas grain growth upon prolonged annealing governs further variation of thermal conductivity. The results of this study not only provide important insights into the degeneration mechanism of thermal insulation of Fe-based amorphous coating, but also present an inspiration for exploring the degeneration mechanism of the most metallic coatings serving at high temperatures. • The Fe-based amorphous coating exhibits an extremely low thermal conductivity of κ = 1.92 W/(m∙K). • The degeneration mechanism of thermal insulation property of Fe-based amorphous coating is disclosed. • The low atomic diffusivity retards the bridge-connection of interlamellar pores, resulting in a sluggish sintering kinetics. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
02578972
Volume :
457
Database :
Academic Search Index
Journal :
Surface & Coatings Technology
Publication Type :
Academic Journal
Accession number :
162028249
Full Text :
https://doi.org/10.1016/j.surfcoat.2023.129298