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A numerical study of transverse cracking in cross-ply laminates by 3D finite fracture mechanics

机译:交叉层板横向裂纹的3D有限断裂力学数值研究

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Transverse cracking in cross-ply laminates is a key failure mechanism which needs to be understood in order to predict the failure initiation in these laminates. A new 2D model has recently been presented (Garcia et al., Int.). Solids Struct 51, pp. 3844-3856, 2014) for predicting the first crack onsets in cross-ply laminates under tensile loading, which is based on the coupled criterion of the Finite Fracture Mechanics (FFM). This 2D model is able to predict a strong size effect on the critical strain leading to the first crack onsets, which agrees with some experiments found in the literature. However, some earlier studies have shown that the 3D effects can be relevant in determining the origin of the size effect found in these experiments. Therefore, a 3D application of the coupled criterion, which formulates this criterion as an optimization problem, is proposed here. The objective function to be minimized, under the stress and energy criteria described previously, is the critical strain leading to the first crack onset. The finite number of variables of the optimization define the crack geometry after its onset. Since the crack geometry is parametrized, the variables in the optimization are the parameters defining the crack geometry. The objective function is evaluated by combining FRANC3D and Abaqus. As occurs in the 2D model, the results predict the strong influence of the transverse-ply thickness on the process of transverse cracking. In particular, a slightly larger critical strain is predicted for thinner laminates. In addition, the optimal crack position also varies with the thickness: a free-edge crack onset is predicted for thick laminates, whereas for thin ones, the inside and free-edge crack positions are essentially equivalent. (C) 2016 Elsevier Ltd. All rights reserved.
机译:交叉层压板中的横向裂纹是关键的失效机理,需要对其进行理解才能预测这些层压板中的失效起始点。最近提出了一种新的2D模型(Garcia等,国际)。 Solids Struct 51,第3844-3856页,2014年),用于基于有限断裂力学(FFM)的耦合准则预测拉伸载荷下交叉层板中的第一个裂纹。该2D模型能够预测对导致首次出现裂纹的临界应变的强烈尺寸影响,这与文献中发现的一些实验相吻合。但是,一些较早的研究表明,在确定这些实验中发现的尺寸效应的起源时,3D效应可能是相关的。因此,在此提出耦合标准的3D应用程序,该标准将该方程公式化为优化问题。在前面所述的应力和能量准则下,要最小化的目标函数是导致首次出现裂纹的临界应变。优化的有限数量的变量定义了裂纹的几何形状。由于裂纹几何参数化,因此优化中的变量是定义裂纹几何形状的参数。通过结合FRANC3D和Abaqus评估目标函数。正如在2D模型中所发生的那样,结果预测了横向层厚度对横向开裂过程的强烈影响。尤其是,对于较薄的层压板,预计会有较大的临界应变。此外,最佳裂纹位置也随厚度而变化:厚板层的自由边缘裂纹开始被预测,而薄层板的内部和自由边缘裂纹位置基本相等。 (C)2016 Elsevier Ltd.保留所有权利。

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