Thermal cycling behaviour of thermal barrier coating systems based on first- and fourth-generation Ni-based superalloys

被引:12
作者
Duhamel, Cecilie [1 ]
Chieux, Marion [1 ]
Molins, Regine [1 ]
Remy, Luc [1 ]
Monceau, Daniel [2 ]
Vande Put, Aurelie [2 ]
Guedou, Jean-Yves [3 ]
机构
[1] CNRS, UMR 7633, MINES ParisTech, Ctr Mat, F-91003 Evry, France
[2] Univ Toulouse, CIRIMAT, ENSIACET, F-31030 Toulouse 04, France
[3] SNECMA Grp SAFRAN, F-77550 Villaroche, Reau, France
关键词
thermal cycling behaviour; thermal barrier coating systems; Ni-based superalloys; SULFUR DISTRIBUTION; OXIDATION BEHAVIOR; ALUMINA SCALE; PART I; TEMPERATURE; SUBSTRATE; SEGREGATION; ADHESION;
D O I
10.3184/096034012X13335273125433
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
This study deals with the cyclic oxidation behaviour of thermal barrier coating systems. The systems consist of an yttria-stabilised zircona ceramic top coat deposited by EB-PVD, a beta-(Ni,Pt)Al bond coat and a Ni-based superalloy. Two different superalloys are studied: a first-generation one and a fourth-generation one containing Re, Ru and Hf. The aim of this work is to characterise the microstructural evolution of those systems and to correlate it to their resistance to spallation. Thermal cycling is carried out at 1100 degrees C in laboratory air, with the number of cycles ranging between 10 and 1000. Each cycle consists of a 1 h dwell followed by forced-air cooling for 15 min down to room temperature. Among the main results of this work, it is shown that the MCNG-based system is significantly more resistant to spallation than the AM1-based one. Up to 50 cycles, both systems exhibit similar oxidation rate and phase transformations but major differences are observed after long-term ageing. In particular, a Ru-rich beta-phase is formed in the bond coat of the MCNG-based system while the AM1-based one undergoes strong rumpling of the TGO/bond coat interface due to the loss of the thermal barrier coating.
引用
收藏
页码:136 / 144
页数:9
相关论文
共 25 条
[11]  
Matsuoka Y, 2004, Superalloys 2004, P637, DOI 10.7449/2004/Superalloys_2004_637_642
[12]   A TEM study of sulfur distribution in oxidized Ni40Al and its effect on oxide growth and adherence [J].
Molins, Regine ;
Rouzou, Isabelle ;
Hou, Peggy .
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2007, 454 :80-88
[13]   Study of sulfur distribution in a NiPtAl bondcoat [J].
Molins, Regine ;
Rouzou, Isabelle ;
Remy, Luc ;
Le Biavant-Guerrier, Kristell ;
Jomard, Francois .
MATERIALS AT HIGH TEMPERATURES, 2005, 22 (3-4) :359-366
[14]   Characterization of alumina interfaces in TBC systems [J].
Pint, B. A. ;
More, K. L. .
JOURNAL OF MATERIALS SCIENCE, 2009, 44 (07) :1676-1686
[15]   Substrate and bond coat compositions: factors affecting alumina scale adhesion [J].
Pint, BA ;
Wright, IG ;
Lee, WY ;
Zhang, Y ;
Prussner, K ;
Alexander, KB .
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 1998, 245 (02) :201-211
[16]  
Pint BA, 2000, SUPERALLOYS 2000, P629
[17]   Experimental observations in support of the dynamic-segregation theory to explain the reactive-element effect [J].
Pint, BA .
OXIDATION OF METALS, 1996, 45 (1-2) :1-37
[18]  
Reed RC, 2008, SUPERALLOYS FUNDAMEN, DOI DOI 10.1017/CBO9780511541285
[19]  
Smialek J. L., 2002, Ceramic Engineering and Science Proceedings, V23, P485
[20]   Effect of superalloy substrate composition on the performance of a thermal barrier coating system [J].
Tawancy, HM ;
Mohamed, AI ;
Abbas, NM ;
Jones, RE ;
Rickerby, DS .
JOURNAL OF MATERIALS SCIENCE, 2003, 38 (18) :3797-3807