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Fabrication of SiC-SiC composites for fuel cladding in advanced reactor designs

机译:先进反应堆设计中用于燃料包壳的SiC-SiC复合材料的制备

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摘要

Both advanced fission reactor concepts and fusion energy systems demand materials that can survive extremely harsh operating environments having persistent high temperature and high neutron flux conditions. Silicon carbide fiber/silicon carbide matrix (SiC-SiC) composites have shown promise for these applications, which include fuel cladding and reactor structural components. However, the composite fabrication process is time consuming and the fabrication of complicated geometries can be difficult. In this work, SiC-SiC and carbon fiber-SiC composite samples were fabricated using chemical vapor infiltration (CVI), and the mechanical and thermal properties of samples with a range of densities and total infiltration times were characterized and compared. Both sample density and the reinforcing fiber material were found to have a very significant influence on the composite mechanical and thermal material properties. In particular, internal porosity is found to have a significant effect on the mechanical response, as can be observed in the crack propagation in low density samples. In order to better understand the densification of the composites, a computer model is being developed to simulate the diffusion of reactants through the fiber preform, and SiC deposition on the fiber surfaces. Preliminary modeling has been correlated with experimental results and shows promising results.
机译:先进的裂变反应堆概念和聚变能系统都需要能够在具有持续高温和高中子通量条件的极端恶劣操作环境中生存的材料。碳化硅纤维/碳化硅基体(SiC-SiC)复合材料已显示出对这些应用的希望,其中包括燃料包壳和反应堆结构组件。但是,复合材料的制造过程很耗时,并且复杂的几何形状的制造可能很困难。在这项工作中,使用化学气相渗透法(CVI)制备了SiC-SiC和碳纤维-SiC复合材料样品,并表征和比较了具有一定密度和总渗透时间的样品的机械和热性能。发现样品密度和增强纤维材料都对复合材料的机械和热学材料性能有非常重要的影响。尤其是,发现内部孔隙率对机械响应具有重大影响,正如在低密度样品的裂纹扩展中所观察到的那样。为了更好地理解复合材料的致密化,正在开发一种计算机模型来模拟反应物通过纤维预成型坯的扩散以及SiC在纤维表面的沉积。初步建模已与实验结果相关联,并显示出令人鼓舞的结果。

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