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Strain rate effects on the intralaminar fracture toughness of composite laminates subjected to compressive load

机译:应变速率对复合材料层合板层内断裂韧性的影响

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This paper presents an experimental and numerical study focused on the mode-I intralaminar toughness characterization of a woven carbon/epoxy composite loaded in compression and subjected to high strain rates. Simulations for non-standardized Single Edge Notch Bending (SENB) and Double Edge Notch (DEN) specimens were carried out using a continuum damage mechanics based failure model implemented as an user defined material model within ABAQUS software. A Finite Element Model was used in order to produce an optimal specimen for intralaminar fracture toughness tests. A new data reduction scheme based on the numerical evaluation of the strain energy release rate using the J-integral method is proposed to determine the stress intensity factor for composites. The proposed methodology accounts for finite geometry and material anisotropy effects. The dynamic tests were carried out at strain rates of 560s(-1),690s(-1),770s(-1) using an adapted version of the Split Hopkinson Pressure Bar. A high-speed camera was used for monitoring the crack propagation. A Scanning Electron Microscope (SEM) was used to aid the fractographic analyses on the damaged surface of the tested samples searching for the possible failures mechanisms within the material. The experimental results indicated that the composite laminates studied herein are very sensitive to the strain rate effects.
机译:本文提供了一项实验和数值研究,重点是压缩加载并承受高应变速率的机织碳/环氧树脂复合材料的I型层内韧性表征。使用基于连续损伤力学的失效模型(作为用户定义的材料模型在ABAQUS软件中实施),对非标准的单边缺口弯曲(SENB)和双边缺口(DEN)样品进行了仿真。为了生成用于层内断裂韧性测试的最佳试样,使用了有限元模型。提出了一种新的基于J-积分法的应变能释放率数值评估的数据约简方案,以确定复合材料的应力强度因子。所提出的方法考虑了有限的几何形状和材料各向异性效应。使用改版的斯普利特霍普金森压力棒以560s(-1),690s(-1),770s(-1)的应变速率进行了动态测试。高速相机用于监测裂纹扩展。使用扫描电子显微镜(SEM)来帮助对被测样品的受损表面进行分形分析,以寻找材料内部可能的失效机理。实验结果表明,本文研究的复合层合物对应变速率效应非常敏感。

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