Enhancement of high temperature oxidation resistance and spallation resistance of SiC-self-healing thermal barrier coatings
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Type
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Journal
Article
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Author
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Taoyuan
Ouyang
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Author
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Xuanwei
Fang
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URL
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Volume
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286
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Pages
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365-375
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Publication
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Surface
and Coatings Technology
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Date
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January
25, 2016
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Abstract
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Thermal
barrier coatings (TBCs) are commonly used to protect metallic blades in
gas-turbine engines where the operating conditions include an aggressive
environment at high temperatures. The most important factor controlling TBC
durability is the growth of a thermally grown oxide (TGO) layer which is
formed during high temperature oxidation. To improve the oxidation resistance
of conventional TBC, researchers prepared a SiC-self-healing coating, named
the SAZ, using an air plasma spray (APS) technique on top of the classic
bilayer TBC (YSZ TBC), consisting of the bond coating (BC) and the YSZ
coating.
Cracks allow SiC particles locating on the crack outside surface to react with the oxygen in the atmosphere at the temperature above 720 °C resulting in healing. As oxidation progress, the crack surfaces are covered with the formed oxide. Ultimately, the space between the crack surfaces is completely or incompletely filled with the formed oxide. The sealing effect enhances the oxygen diffusion resistance of SAZ coatings. Consequently, the partial pressure of oxygen at the BC-YSZ interface of SAZ TBC samples is lower than of YSZ TBC samples. The oxidation and spallation resistance of the SAZ TBC samples is enhanced because the growth rate of TGO is slower due to the low partial pressure of oxygen. The high temperature cyclic oxidation tests performed at 1127 °C was conducted to examine the oxidation and spallation resistance of the SAZ TBC. Results revealed that the mass gain of SAZ TBC samples, which was related to oxidation resistance, was 63.29% of YSZ TBC samples, and the mass loss of SAZ TBC samples, which was related to spallation resistance, was 56.08% of YSZ TBC samples. |
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