TY - JOUR
T1 - A Promising Nanostructured Lu2Si2O7/Lu2SiO5 Environmental Barrier Coating With Exceptional Thermal Cycling Property
T2 - Design, Fabrication, and Screening
AU - Guo, Donghui
AU - Xu, Baosheng
AU - Zou, Yun
AU - He, Jian
AU - Guo, Hongbo
N1 - Publisher Copyright:
© 2026 Wiley-VCH GmbH.
PY - 2026
Y1 - 2026
N2 - In addition to thermal barrier coatings, environmental barrier coatings have gradually become commonly used materials in high-temperature hot-section components due to their remarkable thermomechanical properties. Nevertheless, the thermal cycling durability limits the application under harsh combustion gas conditions, such as aircraft engines and gas turbines. Herein, the Lu2Si2O7/Lu2SiO5 double-layer environmental barrier coating by introducing the concept of nanostructure was designed and fabricated, and the thermal insulation and thermal cycling properties of the coating were evaluated by using the method of integration of the finite element simulation and experimental test. These results indicate that the nanostructured Lu2Si2O7/Lu2SiO5 environmental barrier coating with a double-layer structure of 50Lu2SiO5-100Lu2Si2O7 exhibits the minimum thermal stress (154.23 MPa), and remains intact without peeling off after 1200 cycles at 1350°C, with excellent thermal cycling resistance. The thermally grown oxide with a thickness of 3.6 µm in the coating indicates excellent oxidation resistance. Additionally, the nanostructured Lu2Si2O7/Lu2SiO5 coating exhibits excellent phase stability (1350°C) and thermal insulation properties. Accordingly, the nanostructured Lu2Si2O7/Lu2SiO5 double-layer environmental barrier coating is beneficial for improving the thermal cycling durability of aircraft engines and gas turbines, addressing current limitations.
AB - In addition to thermal barrier coatings, environmental barrier coatings have gradually become commonly used materials in high-temperature hot-section components due to their remarkable thermomechanical properties. Nevertheless, the thermal cycling durability limits the application under harsh combustion gas conditions, such as aircraft engines and gas turbines. Herein, the Lu2Si2O7/Lu2SiO5 double-layer environmental barrier coating by introducing the concept of nanostructure was designed and fabricated, and the thermal insulation and thermal cycling properties of the coating were evaluated by using the method of integration of the finite element simulation and experimental test. These results indicate that the nanostructured Lu2Si2O7/Lu2SiO5 environmental barrier coating with a double-layer structure of 50Lu2SiO5-100Lu2Si2O7 exhibits the minimum thermal stress (154.23 MPa), and remains intact without peeling off after 1200 cycles at 1350°C, with excellent thermal cycling resistance. The thermally grown oxide with a thickness of 3.6 µm in the coating indicates excellent oxidation resistance. Additionally, the nanostructured Lu2Si2O7/Lu2SiO5 coating exhibits excellent phase stability (1350°C) and thermal insulation properties. Accordingly, the nanostructured Lu2Si2O7/Lu2SiO5 double-layer environmental barrier coating is beneficial for improving the thermal cycling durability of aircraft engines and gas turbines, addressing current limitations.
KW - atmospheric plasma spraying
KW - environmental barrier coating
KW - lutetium silicates
KW - thermal cycling
KW - thermally grown oxide
UR - https://www.scopus.com/pages/publications/105037495941
U2 - 10.1002/adfm.75652
DO - 10.1002/adfm.75652
M3 - Article
AN - SCOPUS:105037495941
SN - 1616-301X
JO - Advanced Functional Materials
JF - Advanced Functional Materials
ER -