A Combined Thermodynamic/Kinetic Modeling Approach to Predict SiC Recession Due to SiO sub(2) Scale Volatility Under Combustion Environments
A computational approach, which targets on the prediction of SiC recession caused by SiO sub(2) scale volatility under combustion environments, was developed in this study. In this approach, thermodynamic calculation was integrated with a gaseous-diffusion model to calculate the fluxes of volatile s...
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Veröffentlicht in: | Journal of phase equilibria and diffusion 2014-12, Vol.35 (6), p.724-734 |
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Sprache: | eng |
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Zusammenfassung: | A computational approach, which targets on the prediction of SiC recession caused by SiO sub(2) scale volatility under combustion environments, was developed in this study. In this approach, thermodynamic calculation was integrated with a gaseous-diffusion model to calculate the fluxes of volatile species, such as SiO(g), Si(OH) sub(4)(g), SiO(OH) sub(2)(g), and SiO(OH)(g), produced by the reaction of SiO sub(2) scale with the combustion air. The resulted weight loss of SiC was then calculated under a variety of combustion environments. The benefit of using environmental barrier coating (EBC) in the protection of SiC from recession was demonstrated by the calculation. It is shown that the weight loss of SiC-based ceramics could be significantly reduced when EBCs, such as mullite (Al sub(6)Si sub(2)O sub(13 ) or written as 3Al sub(2)O sub(3).2SiO sub(2)) or SrAS sub(2) (SrO.Al sub(2)O sub(3).2SiO sub(2)), are used. The effects of combustion conditions, such as temperature and total pressure, on the volatility of SiO sub(2) scale were also discussed. |
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ISSN: | 1547-7037 1863-7345 |
DOI: | 10.1007/s11669-014-0336-4 |