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Uncertainties of unidirectional composite strength under tensile loading and variation of environmental condition

机译:拉伸载荷和环境条件变化下单向复合强度的不确定性

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A probabilistic strength model is developed for unidirectional composites with fibers in hexagonal arrays. The model assumes that, a central core of broken fibers surrounded by unbroken fibers which are subjected to unidirectional tensile loading. The proposed approach consists in using a modified shear lag model to calculate the ineffective lengths and stress concentrations around fiber breaks. The main feature in the model lies in incorporating the variation of composite properties due to temperature and moisture, in order to predict degradation of fibers and matrix characteristics. The strength degradation is often seen as a result of changes in ineffective lengths at fiber breaks, leading to stress concentrations in intact neighboring fibers. As fiber breaks are intrinsically random, the variability of input data allows us to describe the probabilistic model by using the Monte-Carlo method. The sensitivities of the mechanical response are evaluated regarding the uncertainties in design variables such as Young's modulus of fibers and matrix, fiber reference strength, shear yield stress, fiber volume fraction and shear parameter defining the shear stress in the inelastic region.
机译:针对具有六边形阵列纤维的单向复合材料,建立了一个概率强度模型。该模型假定,断裂纤维的中心芯被未断裂纤维包围,未断裂纤维受到单向拉伸载荷。所提出的方法包括使用修正的剪切滞后模型来计算纤维断裂周围的无效长度和应力集中。该模型的主要特征在于,考虑到由于温度和湿度而引起的复合材料特性的变化,以便预测纤维的降解和基体特性。强度下降通常被认为是纤维断裂时无效长度变化的结果,导致完整的相邻纤维应力集中。由于纤维断裂本质上是随机的,因此输入数据的可变性使我们可以使用蒙特卡洛方法来描述概率模型。评估机械响应的敏感性,涉及设计变量的不确定性,例如纤维和基质的杨氏模量,纤维参考强度,剪切屈服应力,纤维体积分数和定义非弹性区域中剪切应力的剪切参数。

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