Numerical analysis of the influence of coating porosity and substrate elastic properties on the residual stresses in high temperature graded coatings

Authors
Citation
V. Teixeira, Numerical analysis of the influence of coating porosity and substrate elastic properties on the residual stresses in high temperature graded coatings, SURF COAT, 146, 2001, pp. 79-84
Citations number
15
Categorie Soggetti
Material Science & Engineering
Journal title
SURFACE & COATINGS TECHNOLOGY
ISSN journal
02578972 → ACNP
Volume
146
Year of publication
2001
Pages
79 - 84
Database
ISI
SICI code
0257-8972(200109/10)146:<79:NAOTIO>2.0.ZU;2-A
Abstract
The functionality and reliability of coated devices are strongly related to residual stresses of coatings. The major problem in thermal barrier coatin gs (TBCs) applied to gas turbine components is the failure by spallation of ceramic coating under thermal cycling processes. In order to prevent spall ation and to improve the thermo-mechanical behaviour of the TBC the interfa cial stresses in the coating system should be reduced. To overcome this pro blem it is desirable to introduce a graded layer between the metallic bond coat and the zirconia top coating. Therefore, a detailed study of the optim isation of the gradient profile is necessary in respect to thermal stress r elief. In this paper a numerical model of thermal stress distribution withi n a multilayered system which consists of a functionally gradient material (FGM) is presented. The structure of the graded coating system is made of a ceramic layer and a metallic layer, where between them there is an interla yer which is a graded composite made of the metal (NiCr-alloy) and the cera mic (ZrO2Y2O3). The effects on residual stress distribution of elastic prop erties of the alloy substrate, the graded interlayer thickness and ceramic layer porosity were analysed for the case of a fully graded TBC using a lin ear compositional profile for the FGM. This model will provide some insight s regarding the development of a methodology for designing fail-safe graded coating systems used in high temperature applications. (C) 2001 Elsevier S cience B.V. All rights reserved.