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Microstructure and mechanical properties of three-dimensional five-directional braided composites

机译:三维五向编织复合材料的组织和力学性能

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Three-dimensional (3D) five-directional braided composites are significant structural materials in the fields of astronauts and aeronautics. On the basis of the 3D five-directional braiding process, three types of microstructural unit cell models are established with respect to the interior, surface and corner regions. The mathematical relationships among the structural parameters, such as fiber orientation, fiber volume fraction, the yam packing factor, are derived. By using these three unit cell models, a microme-chanical prediction procedure is described to simulate the stiffness and strength properties of 3D five-directional braided composites. Only the in situ constituent fiber and matrix properties of the composites and the fiber volume proportion are required in the simulation. The stress states generated in the constituent fiber and matrix materials are explicitly correlated with the overall applied load on the composites. The predictive stiffness and strength are in good agreement with available experimental data, which demonstrates the applicability of the present analytical model. (C) 2009 Elsevier Ltd. All rights reserved.
机译:三维(3D)五向编织复合材料是宇航员和航空领域的重要结构材料。在3D五向编织过程的基础上,针对内部,表面和拐角区域建立了三种类型的微观结构单元模型。推导了结构参数之间的数学关系,例如纤维取向,纤维体积分数,纱线堆积系数。通过使用这三个单位单元模型,描述了一种微机械预测程序来模拟3D五向编织复合材料的刚度和强度特性。模拟中仅需要复合材料的原位组成纤维和基体特性以及纤维体积比例。组成纤维和基质材料中产生的应力状态与复合材料上的总施加载荷明确相关。预测的刚度和强度与可用的实验数据非常吻合,这证明了本分析模型的适用性。 (C)2009 Elsevier Ltd.保留所有权利。

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