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Improvement in Oxidation and Thermal Shock Resistance of Molten Glass-Coated Carbon Materials by Interfacial Control

机译:通过界面控制改善熔融玻璃涂层碳材料的氧化和热抗冲击性

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The coating of molten silicate glass on a porous carbon substrate was developed, without the formation of cristobalite at the carbon-glass layer interface, in order to improve the steam oxidation and thermal shock resistance. Initially, suitable conditions for coating were assumed from thermodynamic analysis. Based on these calculations, the wettability of the carbon to molten glass was modified by infiltration and pyrolysis of a Si-N precursor, and the coating with glass was carried out under higher N{sub}2 partial pressures. As a result, carbon substrates were completely sealed with glass, without the production of cristobalite at the interface, and the glass was infiltrated into the substrate. In contrast, coating with glass at lower N{sub}2 partial pressures, such as in Ar, were followed by the formation of cristobalite along with many pores at the interface. The structural changes occurring as a result of variation of the N{sub}2 partial pressure during sealing with glass are in good agreement with the thermodynamic analysis. The glass-coated carbon materials, which were fabricated at higher N{sub}2 partial pressure, possessed excellent steam oxidation resistance and thermal shock resistance.
机译:开发熔融硅酸盐玻璃的熔融硅酸盐玻璃,在碳 - 玻璃层界面处形成克里斯橡胶,以改善蒸汽氧化和热抗冲击性。最初,从热力学分析中假设合适的涂层条件。基于这些计算,通过渗透和渗透到熔融玻璃的润湿性和Si-N前体的热解,并在较高的N {} 2部分压力下进行玻璃的涂层。结果,在界面处完全用玻璃完全密封碳基材,在界面处产生Cristobalite,并且将玻璃渗透到基材中。相比之下,在下部N {亚} 2的玻璃中涂覆玻璃,例如在Ar中的部分压力,然后在界面处与许多孔隙形成ristobalite。由于玻璃密封期间的N {Sub} 2分压的变化而发生的结构变化与热力学分析很好。玻璃涂层碳材料,在较高的N {亚} 2分压下制造,具有优异的蒸汽抗氧化性和热抗震性。

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