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Anisotropic fracture properties and crack path prediction in glass and cellulose fiber reinforced composites

机译:玻璃和纤维素纤维增强复合材料的各向异性裂缝性能和裂纹路径预测

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摘要

Natural fiber reinforced composites exhibit beneficial features compared to conventional engineering material, e.g. a comparable strength and a reduced weight at the same time. To exploit these beneficial properties at technical structures, fracture mechanical concepts must be taken into account. The fracture behavior in composite materials is related to the interplay of crack growth in the matrix material and the reinforcements and the delamination of interfaces between the constituents. The spacial distribution and orientations of the reinforcements in general induces anisotropic elastic and fracture mechanical properties in composites. In this work, the directional crack resistance of polypropylene containing a defined amount of glass fibers or regenerated cellulose fibers is measured first. Next, various experiments at compact tension specimens with defined fiber orientations are carried out, in order to investigate the crack growth behavior. A crack deflection criterion based on the J-integral, accounting for the local anisotropy of the crack resistance, is introduced and implemented into a crack growth model. The crack tip loading quantities are calculated applying large integration contours, excluding all numerically inaccurate values at the crack tip. One major outcome of the model based investigation is a bifurcation of the solution for the crack path at pure mode-I loading, depending on the degree of anisotropy and fiber orientations. Crack growth simulations show good agreement with the experiments and are capable of predicting the basic features of deflection. (C) 2017 Elsevier Ltd. All rights reserved.
机译:与传统的工程材料相比,天然纤维增强复合材料表现出有益特征,例如,同时可比强度和重量减轻。为了利用技术结构的这些有益特性,必须考虑骨折机械概念。复合材料中的断裂行为与基质材料中的裂纹生长的相互作用和组分之间的界面的分层有关。相一般而言,增强材料的间隔分布和取向在复合材料中诱导各向异性弹性和断裂力学性能。在这项工作中,首先测量含有限定量的玻璃纤维或再生纤维素纤维的聚丙烯的定向抗裂性。接下来,进行具有限定纤维取向的紧凑型张力样品的各种实验,以研究裂纹生长行为。引入并实施了基于J-Integral的裂缝偏转标准,占抗裂性局部各向异性的局部各向异性,并实施到裂缝生长模型中。裂缝尖端装载量计算施加大集成轮廓,不包括在裂缝尖端处的所有数值不准确的值。基于模型的研究的一个主要结果是根据各向异性和纤维取向的程度为纯模式-1装载的裂纹路径的溶液分叉。裂缝增长模拟与实验表现出良好的一致性,能够预测偏转的基本特征。 (c)2017 Elsevier Ltd.保留所有权利。

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