Damage Evolution in Thermal Barrier Coatings with Thermal Cycling

被引:32
|
作者
Heeg, Bauke [2 ]
Tolpygo, Vladimir K. [3 ]
Clarke, David R. [1 ]
机构
[1] Harvard Univ, Sch Engn & Appl Sci, Cambridge, MA 02138 USA
[2] Lumium, Leeuwarden, Netherlands
[3] Honeywell Aerosp, Phoenix, AZ 85034 USA
关键词
PHOTO-STIMULATED LUMINESCENCE; POLYCRYSTALLINE ALUMINA FILMS; RESIDUAL-STRESSES; PIEZOSPECTROSCOPIC DETERMINATION; DELAMINATION; OXIDATION; POLARIZATION; MODEL;
D O I
10.1111/j.1551-2916.2011.04496.x
中图分类号
TQ174 [陶瓷工业]; TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Thermal barrier coatings typically fail on cooling after prolonged thermal cycling or isothermal exposure. The mechanics of spalling requires that first a critical sized portion of the coating separates from the underlying material, then buckles and finally spalls away. The critical size for buckling depends on the thickness of the coating but is several millimeters for typical zirconia coatings 150 mu m thick. As-deposited coatings do not have interface separations but they form on thermal cycling as described in this work based on observations of coating cross-sections combined with the stress redistribution in the thermally grown oxide imaged using a piezospectroscopic luminescence method. Analysis of the images reveals that small, isolated regions of damage initially form and then grow, linking up and coalescing to form percolating structures across the coating until the buckling condition is attained, the buckle extends and failure occurs by spallation. The piezospectroscopic imaging of the stresses in the thermally grown oxide formed by oxidation beneath thermal barrier coatings provides a form of "stress tomography" enabling the subcritical separations to be monitored.
引用
收藏
页码:S112 / S119
页数:8
相关论文
共 50 条
  • [31] Evolution of photostimulated luminescence during thermal cycling of electron beam physical vapor deposited thermal barrier coatings
    Jayaraj, B.
    Franke, B.
    Laxman, S.
    Miranda, D.
    Liu, J.
    Byeon, J. W.
    Sohn, Y. H.
    Proceedings of the ASME Turbo Expo 2005, Vol 1, 2005, : 375 - 380
  • [32] Damage progression of thermal barrier coatings by CMAS
    Hayashi, Yuki
    Yamagishi, Satoshi
    Okazaki, Masakazu
    Zairyo/Journal of the Society of Materials Science, Japan, 2015, 64 (02) : 134 - 139
  • [33] Prediction of damage and failure in thermal barrier coatings
    Chan, KS
    Lee, YD
    Leverant, GR
    Fitzgerald, TJ
    Goedjen, JG
    DAMAGE AND FAILURE OF INTERFACES, 1997, : 249 - 256
  • [34] Damage accumulation mechanisms in thermal barrier coatings
    Newaz, GM
    Nusier, SQ
    Chaudhury, ZA
    JOURNAL OF ENGINEERING MATERIALS AND TECHNOLOGY-TRANSACTIONS OF THE ASME, 1998, 120 (02): : 149 - 153
  • [35] Thermal Cycling Behavior of Thermal Barrier Coatings with HVOF NiCrAlY Bond Coat
    L. Y. Ni
    C. Liu
    H. Huang
    C. G. Zhou
    Journal of Thermal Spray Technology, 2011, 20
  • [36] FAILURE DURING THERMAL CYCLING OF PLASMA-SPRAYED THERMAL BARRIER COATINGS
    BERNDT, CC
    HERMAN, H
    THIN SOLID FILMS, 1983, 108 (04) : 427 - 437
  • [37] The role of transient oxides during deposition and thermal cycling of thermal barrier coatings
    Nijdam, T.J.
    Sloof, W.G.
    Mater High Temp, 3-4 (551-559):
  • [38] Damage evolution and lifetime prediction of thermal barrier coatings during cyclic oxidation
    Beck, Tilmann
    Herzog, Roland
    Trunova, Olena
    Steinbrech, Rolf W.
    Singheiser, Lorenz
    PLASTICITY, FAILURE AND FATIGUE IN STRUCTURAL MATERIALS-FROM MACRO TO NANO: PROCEEDINGS OF THE HAEL MUGHRABI HONORARY SYMPOSIUM, 2008, : 207 - 212
  • [39] Delamination mechanism of thermal barrier coatings induced by thermal cycling and growth stresses
    Xiao, Y. Q.
    Yang, L.
    Zhu, W.
    Zhou, Y. C.
    Pi, Z. P.
    Wei, Y. G.
    ENGINEERING FAILURE ANALYSIS, 2021, 121
  • [40] Thermal Cycling Behavior of Thermal Barrier Coatings with HVOF NiCrAlY Bond Coat
    Ni, L. Y.
    Liu, C.
    Huang, H.
    Zhou, C. G.
    JOURNAL OF THERMAL SPRAY TECHNOLOGY, 2011, 20 (05) : 1133 - 1138