A chromia forming thermal barrier coating system

被引:10
作者
Taylor, M. P. [1 ]
Evans, H. E. [1 ]
Gray, S. [2 ]
Nicholls, J. R. [2 ]
机构
[1] Univ Birmingham, Birmingham B15 2TT, W Midlands, England
[2] Cranfield Univ, Surface Sci & Engn Ctr, Cranfield MK43 0AL, Beds, England
来源
MATERIALS AND CORROSION-WERKSTOFFE UND KORROSION | 2011年 / 62卷 / 07期
基金
英国工程与自然科学研究理事会;
关键词
CORROSION;
D O I
10.1002/maco.201005881
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Conventional thermal barrier coating (TBC) systems consist of an insulating ceramic topcoat, a bond coat for oxidation protection and the underlying superalloy designed to combat the oxidising conditions in aero- and land-based gas turbines. Under high-temperature oxidation, the use of an alumina forming bond coat is warranted, thus all current TBC systems are optimised for the early formation of a dense, protective thermally grown oxide (TGO) of alumina. This also offers protection against Type I hot corrosion but a chromia layer gives better protection against Type II corrosion and intermediate temperatures, the conditions found in land-based gas turbines. In this paper the authors present the first known results for a chromia forming TBC system. Tests have been performed under oxidising conditions, up to 1000 h, at temperatures between 750 degrees C and 900 degrees C, and under Type I (900 degrees C) and Type II (700 degrees C) hot corrosion conditions up to 500 h. Under all these conditions no cracking, spallation or degradation was observed. Examination showed the formation of an adherent, dense chromia TGO at the bond coat / topcoat interface. These initial results are very encouraging and the TGO thicknesses agree well with comparable results reported in the literature.
引用
收藏
页码:668 / 673
页数:6
相关论文
共 11 条
[1]   A software tool for lifetime prediction of thermal barrier coating systems [J].
Busso, E. P. ;
Evans, H. E. ;
Wright, L. ;
McCartney, L. N. ;
Nunn, J. ;
Osgerby, S. .
MATERIALS AND CORROSION-WERKSTOFFE UND KORROSION, 2008, 59 (07) :556-565
[2]   The influence of bondcoat and topcoat mechanical properties on stress development in thermal barrier coating systems [J].
Busso, E. P. ;
Qian, Z. Q. ;
Taylor, M. P. ;
Evans, H. E. .
ACTA MATERIALIA, 2009, 57 (08) :2349-2361
[3]   Diffusion cells and chemical failure of MCrAlY bond coats in thermal-barrier coating systems [J].
Evans, HE ;
Taylor, MP .
OXIDATION OF METALS, 2001, 55 (1-2) :17-34
[4]   Mechanisms of breakaway oxidation and application to a chromia-forming steel [J].
Evans, HE ;
Donaldson, AT ;
Gilmour, TC .
OXIDATION OF METALS, 1999, 52 (5-6) :379-402
[5]  
Giggins C. S., 1979, FR11545 PWA
[6]   MECHANISM OF NA2SO4 INDUCED CORROSION AT 600-DEGREES-C-900-DEGREES-C [J].
LUTHRA, KL ;
SHORES, DA .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1980, 127 (10) :2202-2210
[7]   Smart overlay coatings - concept and practice [J].
Nicholls, JR ;
Simms, NJ ;
Chan, W ;
Evans, HE .
SURFACE & COATINGS TECHNOLOGY, 2002, 149 (2-3) :236-244
[8]   Evaluation of thermal barrier coating systems on novel substrates [J].
Pint, BA ;
Wright, IG ;
Brindley, WJ .
JOURNAL OF THERMAL SPRAY TECHNOLOGY, 2000, 9 (02) :198-203
[9]   LASER SURFACE-TREATMENT AND ITS INFLUENCE ON THE DEVELOPMENT OF HEALING CR2O3 SCALES ON NICKEL CHROMIUM-ALLOYS [J].
STOTT, FH ;
BARTLETT, PKN ;
WOOD, GC .
OXIDATION OF METALS, 1987, 27 (1-2) :37-55
[10]   HIGH-TEMPERATURE CORROSION OF SUPERALLOYS [J].
STRINGER, J .
MATERIALS SCIENCE AND TECHNOLOGY, 1987, 3 (07) :482-493