Reactivity between rare-earth oxides based thermal barrier coatings and a silicate melt

被引:23
作者
Costa, Gustavo C. C. [1 ]
Zhu, Dongming [1 ]
Kulis, Michael J. [1 ]
Acosta, Waldo A. [1 ]
Ghoshal, Anindya [2 ]
机构
[1] NASA, Glenn Res Ctr, Cleveland, OH 44135 USA
[2] US Army Res Lab, Adelphi, MD USA
关键词
coatings; degradation; rare earths; thermal barrier coatings; RAMAN-SPECTRA; MOLTEN CMAS; TEMPERATURE-DEPENDENCE; DEGRADATION; CERAMICS; ZIRCONIA; DEPOSITS; COMPOSITES; RESISTANCE; HAFNIA;
D O I
10.1111/jace.15516
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
The reactivity between rare-earth (RE-) oxide stabilized ZrO2 or HfO2 thermal barrier coatings (TBCs) and a calcium-magnesium-aluminum-silicate (CMAS) melt was studied at 1310 degrees C. These reactions are representative of the ingestion of siliceous materials by the intake air of gas turbines (e.g., in aircraft engines) at high temperatures (>1200 degrees C). These materials can melt and react with coated components in the hot section, resulting in premature failure. The goal of this work was to probe the effect of various RE (RE=Y, Yb, Dy, Gd, Nd, and Sm) oxides in the melt phase equilibrium and stability of the top-coating system. Thermodynamic calculations of the phase assemblage of the (1-x) ZrO2-xY(2)O(3) coating materials and CMAS melt are compared with the experimental findings. CMAS was found to penetrate the samples at the grain boundaries and dissolve the coating materials to form silicate phases containing the RE elements. Furthermore, apatite and garnet crystalline phases formed in the samples with total RE-oxide content higher than 16mol% in the reaction zone for the ZrO2 system. In general, samples with nominal compositions ZrO2-9Dy(2)O(3), HfO2-7Dy(2)O(3), ZrO2-8Y(2)O(3), HfO2-6Er(2)O(3), ZrO2-9.5Y(2)O(3)-2.25Gd(2)O(3)-2.25Yb(2)O(3), and ZrO2-30Y(2)O(3) exhibited lower reactivity, or more resistance, to CMAS than the other coating compositions.
引用
收藏
页码:3674 / 3693
页数:20
相关论文
共 40 条
[1]   Calcium-magnesium aluminosilicate (CMAS) reactions and degradation mechanisms of advanced environmental barrier coatings [J].
Ahlborg, Nadia L. ;
Zhu, Dongming .
SURFACE & COATINGS TECHNOLOGY, 2013, 237 :79-87
[2]   THERMO-CALC & DICTRA, computational tools for materials science [J].
Andersson, JO ;
Helander, T ;
Höglund, LH ;
Shi, PF ;
Sundman, B .
CALPHAD-COMPUTER COUPLING OF PHASE DIAGRAMS AND THERMOCHEMISTRY, 2002, 26 (02) :273-312
[3]   Role of environmental deposits and operating surface temperature in spallation of air plasma sprayed thermal barrier coatings [J].
Borom, MP ;
Johnson, CA ;
Peluso, LA .
SURFACE & COATINGS TECHNOLOGY, 1996, 86 (1-3) :116-126
[4]   Calorimetric Measurement of Surface and Interface Enthalpies of Yttria-Stabilized Zirconia (YSZ) [J].
Costa, Gustavo C. C. ;
Ushakov, Sergey V. ;
Castro, Ricardo H. R. ;
Navrotsky, Alexandra ;
Muccillo, Reginaldo .
CHEMISTRY OF MATERIALS, 2010, 22 (09) :2937-2945
[5]  
Darolia R, 2007, U. S. Patent Application, Patent No. [US20070160859 A1, 20070160859]
[6]   Composition effects of thermal barrier coating ceramics on their interaction with molten Ca-Mg-Al-silicate (CMAS) glass [J].
Drexler, Julie M. ;
Ortiz, Angel L. ;
Padture, Nitin P. .
ACTA MATERIALIA, 2012, 60 (15) :5437-5447
[7]   Effect of CMAS Deposits on MOCVD Coatings in the System Y2O3-ZrO2: Phase Relationships [J].
Eils, Nadine K. ;
Mechnich, Peter ;
Braue, Wolfgang .
JOURNAL OF THE AMERICAN CERAMIC SOCIETY, 2013, 96 (10) :3333-3340
[8]   STRUCTURAL DISORDER AND PHASE-TRANSITIONS IN ZRO2-Y2O3 SYSTEM [J].
FEINBERG, A ;
PERRY, CH .
JOURNAL OF PHYSICS AND CHEMISTRY OF SOLIDS, 1981, 42 (06) :513-518
[9]   CMAS degradation of environmental barrier coatings [J].
Grant, Kendra M. ;
Kramer, Stephan ;
Lofvander, Jan P. A. ;
Levi, Carlos G. .
SURFACE & COATINGS TECHNOLOGY, 2007, 202 (4-7) :653-657
[10]   Chemical and Mechanical Consequences of Environmental Barrier Coating Exposure to Calcium-Magnesium-Aluminosilicate [J].
Harder, Bryan J. ;
Ramirez-Rico, Joaquin ;
Almer, Jonathan D. ;
Lee, Kang N. ;
Faber, Katherine T. .
JOURNAL OF THE AMERICAN CERAMIC SOCIETY, 2011, 94 :S178-S185