Defect evolution in thermal barrier coating systems under multi-axial thermomechanical loading

被引:17
|
作者
Baufeld, B
Bartsch, M [1 ]
Dalkiliç, S
Heinzelmann, M
机构
[1] German Aerosp Ctr, Cologne, Germany
[2] Anadolu Univ, Coll Civil Aviat, Eskisehir, Turkey
[3] Univ Appl Sci, Rheinbach, Germany
来源
SURFACE & COATINGS TECHNOLOGY | 2005年 / 200卷 / 5-6期
关键词
interfaces; defects; nickel alloy; zirconium oxide; multilayer; thermal barrier coating;
D O I
10.1016/j.surfcoat.2005.07.098
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
In service, gas turbine components with thermal barrier coatings experience high cyclic mechanical and thermal loading. Important, but not yet considered sufficiently, are the multi-axial stresses arising from thermal gradients. In this study, multi-axial stresses were simulated in laboratory experiments using a specially designed test rig. Cyclic thermomechanical fatigue experiments with radial thermal gradients (TGMF) were performed on tubular specimens consisting of a directionally densified super-alloy substrate, a NiCoCrAlY bond coat, and a ceramic thermal barrier coating (TBC). The test setup enables surface temperatures of 1000 degrees C, temperature differences over the whole wall thickness of the specimen of about 170 degrees C, and high heating and cooling rates. The resultant defects have specific features consisting of cracks parallel to the bond coat/TBC interface. They are located within the bond coat close to this interface. Weakening thus this interface, the defects enhance TBC spallation. Finite element analyses, calculating stress distributions during the quasi-stationary condition of the TGMF test cycle at high temperature and the transient stress distributions during cooling, were used to discuss the evolution of these specific defects. (c) 2005 Elsevier B.V All rights reserved.
引用
收藏
页码:1282 / 1286
页数:5
相关论文
共 50 条
  • [1] Failure of thermal barrier coating systems under cyclic thermomechanical loading
    Tzimas, E
    Müllejans, H
    Peteves, SD
    Bressers, J
    Stamm, W
    ACTA MATERIALIA, 2000, 48 (18-19) : 4699 - 4707
  • [2] Damage evolution and modeling of sintered metals under multi-axial loading conditions
    Ma, Songyun
    Yuan, Huang
    COMPUTATIONAL MATERIALS SCIENCE, 2013, 80 : 123 - 133
  • [3] Estimation of the Bauschinger effect under the multi-axial loading
    Nishimura, T
    Hoshi, H
    Furukawa, Y
    MECHANICS OF STRUCTURES AND MATERIALS, 1999, : 507 - 512
  • [4] Behavior of concrete under multi-axial fatigue loading
    Song, Yupu
    Wang, Huailiang
    Jia, Jinqing
    Jianzhu Jiegou Xuebao/Journal of Building Structures, 2008, 29 (SUPPL.): : 260 - 265
  • [5] The failure mechanisms of fasteners under multi-axial loading
    Cao, Zhenzhong
    Brake, M. R. W.
    Zhang, Dingguo
    ENGINEERING FAILURE ANALYSIS, 2019, 105 : 708 - 726
  • [6] Simulation of the thermomechanical behavior of shape memory alloys under multi-axial non-proportional loading
    Juhász, L
    Andrä, H
    Hesebeck, O
    SMART STRUCTURES AND MATERIALS 2000 - ACTIVE MATERIALS: BEHAVIOR AND MECHANICS, 2000, 3992 : 484 - 495
  • [7] Geometrical optimization of notches under multi-axial fatigue loading
    Ghelichi, R.
    Bernasconi, A.
    Guagliano, M.
    INTERNATIONAL JOURNAL OF FATIGUE, 2011, 33 (08) : 985 - 991
  • [8] Yield behavior of aluminum foam under multi-axial loading
    Zhang, Yue
    Jin, Tao
    Li, Shiqiang
    Wang, Zhihua
    Lu, Guoxing
    MECHANICS OF MATERIALS, 2024, 196
  • [9] AN EXPERIMENTAL STUDY OF DUCTILE FAILURE UNDER MULTI-AXIAL LOADING
    Lu, Wei-Yang
    Jin, Helena
    ASME PRESSURE VESSELS AND PIPING CONFERENCE - 2014, VOL 6A, 2014,
  • [10] Compressive failure of fiber composites under multi-axial loading
    Basu, S
    Waas, AM
    Ambur, DR
    JOURNAL OF THE MECHANICS AND PHYSICS OF SOLIDS, 2006, 54 (03) : 611 - 634