Modeling of Chemical Vapor Infiltration for Fiber-Reinforced Silicon Carbide Composites Using Meshless Method of Fundamental Solutions

Patrick Mahoney, A. Povitsky
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Abstract

In this study, the Method of Fundamental Solutions (MFSs) is adopted to model Chemical Vapor Infiltration (CVI) in a fibrous preform. The preparation of dense fiber-reinforced silicon carbide composites is considered. The reaction flux at the solid surface is equal to the diffusion flux towards the surface. The Robin or third-type boundary condition is implemented into the MFS. From the fibers’ surface concentrations obtained by MFS, deposition rates are calculated, and the geometry is updated at each time step, modeling the pore filling over time. The MFS solution is verified by comparing the results to a known analytical solution for a simplified geometry of concentric cylinders with a concentration set at the outer cylinder and a reaction at the inner cylinder. MFS solutions are compared to published experimental data. Porosity transients are obtained by a combination of MFSs with surface deposition to show the relation between the initial and final porosities.
使用无网格基本解法建立碳化硅纤维增强复合材料的化学蒸汽渗透模型
本研究采用基本解法(MFS)来模拟纤维预型件中的化学蒸汽渗透(CVI)。研究考虑了致密纤维增强碳化硅复合材料的制备。固体表面的反应通量等于向表面的扩散通量。MFS 采用罗宾或第三类边界条件。根据 MFS 得出的纤维表面浓度计算沉积率,并在每个时间步更新几何形状,模拟孔隙随时间的填充。通过将 MFS 解决方案的结果与已知的分析解决方案进行比较,验证了 MFS 解决方案是否适用于简化的同心圆柱体几何形状,外圆柱体设置了浓度,内圆柱体设置了反应。MFS 解决方案与已公布的实验数据进行了比较。通过将 MFS 与表面沉积相结合获得孔隙率瞬态,以显示初始孔隙率与最终孔隙率之间的关系。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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