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Micromechanics based elasto-visco-plastic response of long fibre composites using functionally graded interphases at quasi-static and moderate strain rates

机译:基于微力学的长纤维复合材料在准静态和中等应变速率下使用功能梯度中间相的弹黏塑性响应

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A unit cell model is developed to capture the elasto-visco-plastic response of a long fibre composite using a 3-dimensional finite element model. Using a glass rubber model, the elasto-visco-plastic response of the matrix is analysed and the fibre is considered to deform elastically. A functionally graded interphase zone is defined in the region surrounding and encompassing a reinforcing fibre. The model subdivides the interphase zone into an infinite number of concentric rings where stress and strain compatibility is preserved. This model aims to improve on the computational efficiency of micromechanics models where the fibre and matrix are modeled as separate materials. The mechanics of the fibre deformation are governed by a transformation tensor for transversely isotropic materials based on Eshelby's method. The model is calibrated using experimental data for the transverse compression of a unidirectional composite: it is then validated using axial compression and shear data for quasi static strain rates. For moderate strain rate the model is also calibrated for one of the transverse strain rates then validated using the other strain rates and axial compression. The proposed unit cell model is capable of predicting the elasto-visco-plastic response of long fibre composites to a very high accuracy. (C) 2016 Elsevier Ltd. All rights reserved.
机译:开发了一个晶胞模型,以使用3维有限元模型捕获长纤维复合材料的弹-粘塑性响应。使用玻璃橡胶模型,分析了基质的弹粘塑性响应,并认为纤维发生了弹性变形。在围绕和包围增强纤维的区域中定义了功能渐变的相间区域。该模型将相间区域细分为无限数量的同心环,其中保留了应力和应变兼容性。该模型旨在提高将纤维和基质建模为单独材料的微力学模型的计算效率。纤维变形的力学由基于Eshelby方法的横向各向同性材料的转变张量控制。该模型使用实验数据对单向复合材料的横向压缩进行校准:然后使用轴向压缩和剪切数据对准静态应变率进行验证。对于中等应变率,还针对其中一个横向应变率对模型进行了校准,然后使用其他应变率和轴向压缩对其进行了验证。所提出的晶胞模型能够预测长纤维复合材料的弹粘塑性响应至非常高的精度。 (C)2016 Elsevier Ltd.保留所有权利。

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