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Modeling Forced Flow Chemical Vapor Infiltration Fabrication of SiC-SiC Composites for Advanced Nuclear Reactors

机译:先进核反应堆SiC-SiC复合材料的强迫流化学气相渗透制备模型

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Silicon carbide fiber/silicon carbide matrix (SiC-SiC) composites exhibit remarkable material properties, including high temperature strength and stability under irradiation. These qualities have made SiC-SiC composites extremely desirable for use in advanced nuclear reactor concepts, where higher operating temperatures and longer lives require performance improvements over conventional metal alloys. However, fabrication efficiency advances need to be achieved. SiC composites are typically produced using chemical vapor infiltration (CVI), where gas phase precursors flow into the fiber preform and react to form a solid SiC matrix. Forced flow CVI utilizes a pressure gradient to more effectively transport reactants into the composite, reducing fabrication time. The fabrication parameters must be well understood to ensure that the resulting composite has a high density and good performance. To help optimize this process, a computer model was developed. This model simulates the transport of the SiC precursors, the deposition of SiC matrix on the fiber surfaces, and the effects of byproducts on the process. Critical process parameters, such as the temperature and reactant concentration, were simulated to identify infiltration conditions which maximize composite density while minimizing the fabrication time.
机译:碳化硅纤维/碳化硅基体(SiC-SiC)复合材料具有出色的材料性能,包括高温强度和辐射稳定性。这些品质使得SiC-SiC复合材料非常适合用于先进的核反应堆概念,在这些概念中,更高的工作温度和更长的寿命要求比常规金属合金提高性能。但是,需要提高制造效率。 SiC复合材料通常使用化学气相渗透(CVI)进行生产,其中气相前驱物流入纤维预成型坯中并反应形成固态SiC基体。强制流动CVI利用压力梯度将反应物更有效地输送到复合材料中,从而减少了制造时间。必须充分理解制造​​参数,以确保所得复合材料具有高密度和良好的性能。为了帮助优化此过程,开发了计算机模型。该模型模拟了SiC前驱体的传输,纤维表面上SiC基体的沉积以及副产物对工艺的影响。模拟了关键的工艺参数,例如温度和反应物浓度,以识别渗透条件,该条件可使复合材料密度最大化,同时使制造时间最短。

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