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Meso-macro numerical modeling of noncircular braided composite parts based on braiding process parameters

机译:基于编织工艺参数的非圆形编织复合零件的Meso-宏数值模型

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In the past few decades, the applications of composite structures reinforced with braided preforms have been growing increasingly in various industries due to their intrinsic properties. Therefore, their mechanical properties are worth studying experimentally, analytically and numerically. In this respect, the goal of the current study is to perform a finite element modelling on biaxially and triaxially braided composites with constant arbitrary cross-section. Thus, the braid angles formed by clockwisely and counter-clockwisely moving of carriers on noncircular parts, have been initially demonstrated to be unequal, unlike in circular parts. As a result, considering a parallelogram shape for the representative unit cell (RUC), the geometrical relationships for a RUC of 2D biaxially and triaxially braided composite are derived and implemented in VUMAT subroutine. Then, after determination of 3D effective stiffness matrix for each RUC, the finite element modelling is performed to predict bending behavior of final braided composite part. In these simulations, the stiffness variation all over the part is considered and mechanical behavior of composite parts is predicted based on the initial parameters of the braiding process. The obtained results from both experimental and simulations showed an acceptable agreement.
机译:在过去的几十年中,由于其内在特性,各种行业的复合结构增强的复合结构的应用已经越来越多地生长。因此,它们的机械性能值得在实验,分析和数值上进行研究。在这方面,目前研究的目的是在双轴和三轴编织的复合材料上进行有限元建模,其具有恒定的任意横截面。因此,最初已经证明了与圆形部件上的载流子上的圆柱形和逆时针移动的编织角度是不相等的。结果,考虑到代表性单元电池(RUC)的平行四边形形状,在Vumat子程序中导出和实现了2D双轴和三轴编织复合材料的RUC的几何关系。然后,在为每个RUC确定3D有效刚度矩阵之后,进行有限元建模以预测最终编织复合部件的弯曲行为。在这些模拟中,考虑所有部分的刚度变化,并且基于编织过程的初始参数来预测复合部件的机械行为。来自实验和模拟的获得结果显示了可接受的一致。

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