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An investigation of the mechanical performance of Z-pin reinforced composites

机译:Z-pin增强复合材料力学性能的研究

摘要

Fibrous composites, having excellent mechanical properties in the direction of the fibres, have lower mechanical properties in the through thickness direction, controlled by resin. Z-pinning improves the delamination toughness (up to 500%) with a relatively modest reduction to the in-plane mechanical properties (typically 5–15%).udThis experimental study investigates the mechanical performance of Z-Pins bridging an existing delamination in fibre reinforced resin composites under pull-out (Mode I), shear-out (Mode II) and mixed mode loading conditions using a specially designed testing rig. In Mode II the opening displacement was restricted and measured by springs of three different stiffnesses.udA new technique of needle assisted Z-Pin insertion was developed, in which prepreg panels were perforated with a steel needle in order to insert Z-Pins. This technique ensured the desired orientation of Z-Pins, improved pinning quality and removed the necessity of costly preforms used in the traditional UAZ method.Test specimens were blocks (15 mm x 15 mm x 6mm thick) of carbon-epoxy IM7/8552 composite in unidirectional (UD) and quasi-isotropic (QI) stacking sequences, with PTFE delamination film in the mid-plane recreating an existing crack, bridged with a single T300/9310 Z-Pin or a group of four pins of either 0.28 mm or 0.51 mm diameter.udThree phases of pull-out were identified: Linear Phase (linear force-displacement curve), Crack Formation (unstable crack propagation phase) and Frictional Sliding (friction-controlled pull-out). Two phases of shear-out were identified: Linear Phase (with no energy loss) and Breaking Phase (where the fibrous structure of the Z-Pins is fractured, ending with Z-Pin breakage). In mixed mode specimens behaved similarly to pull-out for the pin angles up to 45°. For higher angles the behaviour was more similar to pure shear-out. The influence of the Z-Pin diameter, z-pinning depth, distance between adjacent Z-Pins, composite stacking sequence and pull-out speed on the Z-Pins behaviour were investigated. The results will be useful in the formulation of improved Z-Pin bridging laws for use in finite element models.
机译:在纤维方向上具有优异机械性能的纤维复合材料,在整个厚度方向上,由树脂控制的机械性能较低。 Z钉扎可改善分层韧性(最高500%),而平面内机械性能却相对适度降低(通常为5%至15%)。 ud本实验研究调查了Z-Pins桥接现有分层的机械性能。纤维增强树脂复合材料在拉出(模式I),剪切(模式II)和混合模式加载条件下,使用专门设计的测试设备。在模式II中,打开位移受到三个不同刚度的弹簧的限制和测量。 ud开发了一种新的针刺辅助Z-Pin插入技术,其中,将预浸料面板用钢针刺穿以便插入Z-Pins。这项技术确保了Z钉的理想取向,改善了钉扎质量,并消除了传统UAZ方法中使用的昂贵预成型坯的必要性。测试样本为碳环氧树脂IM7 / 8552复合材料的块(15毫米x 15毫米x 6毫米厚)。以单向(UD)和准各向同性(QI)的堆叠顺序排列,中层PTFE分层膜重现了现有裂缝,并用单个T300 / 9310 Z-Pin或一组四个0.28 mm或直径为0.51毫米。 ud确定了拉出的三个阶段:线性阶段(线性力-位移曲线),裂纹形成(不稳定的裂纹扩展阶段)和摩擦滑动(摩擦控制的拉出)。确定了剪切的两个阶段:线性阶段(无能量损失)和断裂阶段(Z销的纤维结构断裂,以Z销断裂结束)。在混合模式下,对于最大45°的销角,试样的表现与拉出相似。对于更大的角度,其行为与纯剪力更为相似。研究了Z钉直径,Z钉扎深度,相邻Z钉之间的距离,复合堆叠顺序和拔出速度对Z钉行为的影响。该结果将有助于制定改进的Z-Pin桥接定律,以用于有限元模型。

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    Fert Marcin Maciej;

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  • 年度 2016
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