受高超音速边界层影响的碳纤维的微尺度热结构建模

Rui Fu, Alexandre Martin, Sahadeo Ramjatan, Michael Kroells, Thomas E. Schwartzentruber
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摘要

关于热保护系统,现代烧蚀材料的热结构反应在许多方面都非常重要,包括材料选择和尺寸确定。由于烧蚀材料的多孔结构错综复杂,其所承受的热条件也很复杂,因此烧蚀材料可能会表现出意想不到的行为,从而可能导致材料失效。在本研究中,两个求解器--直接模拟蒙特卡洛求解器和基于有限体积的材料响应求解器--被结合在一起,用于预测热保护系统材料(如酚醛浸渍碳烧蚀材料)的微尺度热结构性能。在这种方法中,单个纤维在微观尺度上建模,这为多孔介质行为提供了宝贵的知识。非均匀边界条件(包括热通量和外力)由直接模拟蒙特卡洛求解器捕捉,纤维的详细热性能和结构性能由材料响应求解器捕捉。结果表明,单根纤维不会因温度梯度和施加的空气动力而失效。然而,研究表明纤维的连接点是最脆弱的。这种脆弱性有可能导致粘合剂破裂,从而使纤维分离并导致材料失效。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Microscale Thermal–Structural Modeling for Carbon Fibers Subjected to a Hypersonic Boundary Layer
With regard to the thermal protection system, the thermal–structural responses of modern ablative materials are of primary importance in many aspects, including material selection and sizing. Due to the intricate nature of their porous structure and complicated thermal conditions they are subjected to, ablative materials may exhibit unexpected behavior, which can potentially lead to material failure. In this study, two solvers—a direct simulation Monte Carlo solver and a finite-volume-based material response solver—are coupled together to predict the microscale thermal–structural performance of a thermal protection system material like phenolic impregnated carbon ablator. In this approach, individual fibers are modeled at the microscale, which provides valuable knowledge of porous media behavior. Nonuniform boundary conditions, including the heat flux and external force, are captured by the direct simulation Monte Carlo solver, and the detailed thermal and structural performance of the fiber is captured by the material response solver. The results show that individual fibers do not fail based on the temperature gradient and applied aerodynamic forces. However, it is shown that the attachment points of the fibers are the most vulnerable. This vulnerability can potentially lead to a breakdown of the binders, which would separate fibers and cause material failure.
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