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Advanced geometry modelling of 3D woven reinforcements in polymer composites: processing and performance analysis

机译:聚合物复合材料中3D编织增强材料的高级几何建模:处理和性能分析

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摘要

Numerical methods have become increasingly effective tools for analysis and design of composite materials. This study investigates how the inclusion of geometrical variations in modelling 3D woven fabrics affects the accuracy of numerical predictions. Based on micro-Computed Tomography data of 3D orthogonal woven composites, unit cell models were generated in TexGen at different levels of geometrical detail. Two types of analysis were implemented: (a) computational fluid dynamics (CFD) simulates resin flow during fabric impregnation in composites processing to predict permeability; (b) implicit static finite element analysis predicts in-plane tensile strength of the composites. By comparison with experimental data, the numerical predictions indicate that local geometrical variations, particularly in yarn cross-section, surface crimp and binder yarn path, have significant influence on both permeability and material strength. It is important to model the precise geometry in certain locations while the overall geometry can be simplified in order to maintain the practicality of model generation.
机译:数值方法已经成为用于分析和设计复合材料的越来越有效的工具。这项研究调查了在3D机织物建模中包含几何变化如何影响数值预测的准确性。基于3D正交编织复合材料的微型计算机断层扫描数据,在TexGen中以不同的几何细节级别生成了晶胞模型。进行了两种类型的分析:(a)计算流体动力学(CFD)在复合材料加工过程中的织物浸渍过程中模拟树脂流动,以预测渗透性; (b)隐式静态有限元分析可预测复合材料的面内拉伸强度。通过与实验数据的比较,数值预测表明,局部的几何变化,特别是在纱线横截面,表面卷曲和接结纱路径中,对渗透性和材料强度都有重大影响。重要的是在某些位置对精确的几何图形建模,同时可以简化整体几何图形以保持模型生成的实用性。

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