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Integrated Computational Materials Science and Engineering of Textile Polymer Composites

机译:纺织聚合物复合材料的综合计算材料科学与工程

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An integrated computational framework for textile polymer composites is introduced. A novel polymer curing model is used in connection with modeling the manufacturing process of textile composites. The model is based on the notion of polymer networks that are continuously formed in a body of changing shape due to changes in temperature, chemistry and external loads. Nonlinear material behavior is incorporated through nonlocal continuum damage mechanics that preserves mesh objectivity in calculations that go beyond maximum loads. The integrated model is applied to the curing of plain weave textile composites made from carbon fiber tows and Epon?862 resin. The mechanical and chemical properties are measured during curing using concurrent Brillouin and Raman light scattering. It is shown that significant stresses can develop during cure. The effect of these stresses on the manufactured part performance, when subsequent service loads are applied, is evaluated and a reduction in ultimate load, in agreement with experimental observations, is observed.
机译:介绍了纺织品聚合物复合材料的综合计算框架。一种新颖的聚合物固化模型可用于对纺织品复合材料的制造过程进行建模。该模型基于聚合物网络的概念,该聚合物网络由于温度,化学性质和外部负载的变化而不断形成形状不断变化的主体。非线性材料行为是通过非局部连续介质损伤机制合并而成的,该机制在超出最大载荷的计算中保留了网格的客观性。该集成模型适用于固化由碳纤维丝束和Epon?862树脂制成的平纹纺织复合材料。在固化期间使用同时的布里渊和拉曼光散射测量机械和化学性能。结果表明,在固化过程中会产生很大的应力。当施加后续的服务负载时,评估这些应力对制造零件性能的影响,并与实验观察一致地观察到极限负载的减小。

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