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Titlebook: Ceramic Coatings for High-Temperature Environments; From Thermal Barrier Amirhossein Pakseresht,Kamalan Kirubaharan Amirtha Book 2024 The E

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https://doi.org/10.1007/978-3-658-06123-4t mechanical properties at elevated temperatures. However, corrosive gas and foreign particles in the service environment, such as water vapor/oxygen and some silicate dusts may attack silicon-based ceramics, which finally result in lifetime recession and sometimes severe failure. Therefore, Environ
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https://doi.org/10.1007/978-3-658-06123-4eneration gas-turbine engines. However, hot steam and volcanic ash degrade the mechanical properties of silicon carbide. Environmental barrier coatings (EBCs) play an important role in mitigating corrosion under the harsh operating conditions required for next-generation turbines. In addition to cor
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https://doi.org/10.1007/978-3-658-06123-4igh-temperature application in aerospace propulsion systems. However, this composite material is susceptible to high-temperature oxidation in oxygen-containing environment. Coating with Si-based ceramics or ultra-high temperature ceramic (UHTC) materials is proven to be an efficient method for impro
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Distributed Organizing in Practicespace industry for thermal protection systems (TPS) to face the dramatic thermo-mechanical stress suffered by spacecraft structures during re-entry into Earth atmosphere. A branch of current aerospace research is focused in finding ever more effective coating solutions to preserve CMCs from oxidatio
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https://doi.org/10.1007/978-3-658-06155-5nd hypersonic concepts and the related applications have resulted in the search for new categories of materials capable of withstanding very high temperature. The borides, nitrides and carbides of various transition metals can be employed for synthesising ultra-high-temperature ceramic (UHTC) coatin
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