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Meso-Scale Finite Element Simulations of 3D Braided Textile Composites: Effects of Force Loading Modes

机译:3D编织纺织复合材料的中间尺度有限元模拟:力加载模式的影响

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摘要

Meso-scale finite element method (FEM) is considered as the most effective and economical numerical method to investigate the mechanical behavior of braided textile composites. Applying the periodic boundary conditions on the unit-cell model is a critical step for yielding accurate mechanical response. However, the force loading mode has not been employed in the available meso-scale finite element analysis (FEA) works. In the present work, a meso-scale FEA is conducted to predict the mechanical properties and simulate the progressive damage of 3D braided composites under external loadings. For the same unit-cell model with displacement and force loading modes, the stress distribution, predicted stiffness and strength properties and damage evolution process subjected to typical loading conditions are then analyzed and compared. The obtained numerical results show that the predicted elastic properties are exactly the same, and the strength and damage evolution process are very close under these two loading modes, which validates the feasibility and effectiveness of the force loading mode. This comparison study provides a suitable reference for selecting the loading modes in the unit-cell based mechanical behavior analysis of other textile composites.
机译:中间尺度有限元方法(FEM)被认为是研究编织纺织复合材料的力学行为的最有效和最经济的数控方法。应用周期边界条件对单位单元模型是屈服精确机械响应的关键步骤。然而,在可用的中间尺度有限元分析(FEA)工作中尚未采用力加载模式。在本作工作中,进行中间尺度的FEA以预测电力性能,并在外部载荷下模拟3D编织复合材料的逐行损坏。对于具有位移和力加载模式的相同单元电池模型,然后分析并比较了经受典型负载条件的应力分布,预测的刚度和强度性能和损伤进化过程。所获得的数值结果表明,预测的弹性特性完全相同,并且在这两种加载模式下,强度和损坏进化过程非常接近,这验证了力加载模式的可行性和有效性。该比较研究提供了一种适用于选择其他纺织复合材料的单元电池机械行为分析中的加载模式的参考。

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