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Experimental observations of intersonic crack growth in asymmetrically loaded unidirectional composite plates

机译:非对称加载单向复合材料板内音速裂纹扩展的实验观察

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Some recent experimental observations of highly dynamic crack growth events in thick unidirectional composites are presented. The specimens used in this study were 48-ply thick unidirectional graphite-epoxy composite plates which were either symmetrically (mode I) or asymmetrically (mode II) loaded by impact in a one-point bend configuration with an edge pre-notch machined in the fibre direction. Moderate impact speeds of up to 57 m s(-1) were used. The lateral shearing interferometric technique of coherent gradient sensing in conjunction with high-speed photography was used to visualize the failure process in real time. Mode-I cracks propagated subsonically with crack speeds increasing to the neighbourhood of the Rayleigh wave speed. For asymmetric mode-II types of loading the results revealed highly unstable and intersonic shear-dominated crack growth along the fibres. These cracks propagated with unprecedented speeds reaching 7400 m s(-1): a speed which is more than three times the shear wave speed of the composite and almost equal to the dilatational wave speed of the composite along the fibres. For intersonic crack growth, the interferograms featured a shock wave structure typical of disturbances travelling with speeds higher than one of the characteristic wave speeds in the solid. Evidence of large-scale frictional contact is also presented. [References: 27]
机译:提出了一些最新的实验观察,这些实验观察了厚单向复合材料中高动态裂纹扩展事件。本研究中使用的样品为48层厚的单向石墨-环氧复合材料板,通过单点弯曲配置(通过在边缘上进行预加工的边缘预冲)进行冲击来对称加载(模式I)或不对称加载(模式II)。纤维方向。使用了高达57 m s(-1)的中等冲击速度。相干梯度传感的横向剪切干涉技术与高速摄影技术一起用于实时可视化故障过程。 Ⅰ型裂纹以亚音速传播,裂纹速度增加到瑞利波速附近。对于II型非对称加载,结果显示沿纤维高度不稳定且以声速剪切为主的裂纹扩展。这些裂缝以前所未有的速度传播,达到7400 m s(-1):该速度是复合材料剪切波速度的三倍以上,几乎等于复合材料沿纤维的膨胀波速度。对于声速裂纹扩展,干涉图具有典型的冲击波结构,其冲击波传播的速度高于固体中特征波速度之一。还提供了大规模摩擦接触的证据。 [参考:27]

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