Real Time Experimental Investigation of Dynamic Failure Mode Selection in Sandwich Structures

L. Xu, A. Rosakis
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Abstract

Past studies of dynamic failure in sandwich structures have mostly been concerned with post-mortem investigations of failure patterns resulting from the dynamic loading of such structures through projectile impact. The final fracture patterns have typically been very complex and their time sequence, interdependence, and detailed nature (opening versus shear) were unclear. In the present work we concentrated on the real-time investigation of the generation and the subsequent evolution of dynamic failure that occurred within microseconds after impact. Model sandwich structures involving a combination of transparent polymers and metals (typically tri-layers bonded together by weak or strong adhesives) were designed and subjected to impact loadings to study the failure evolution mechanism. High-speed photography and dynamic photoelasticity were utilized to study the nature and the sequence of failure modes. A series of complex failure modes was observed. In most cases, interfacial cracks (dynamic delamination) appeared first. These cracks were shear dominated and were often intersonic. Thus, initial delamination was found to be shear driven and happen at extremely short time scales even at moderate impact speeds ranging between 20 to 50 m/s. The transition behavior between interlayer crack growth and intralayer crack formation was also observed. Opening (subsonic) intralayer cracks kinking from the dynamic shear delamination propagated into the core layer of the model sandwich structure and eventually branched as they reached a high enough growth speed.
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夹层结构动态破坏模式选择的实时试验研究
过去对夹层结构动力破坏的研究主要集中在对这种结构在弹丸冲击下的动力载荷所导致的破坏模式进行事后分析。最终的裂缝模式通常非常复杂,它们的时间顺序、相互依赖性和详细性质(开放与剪切)都不清楚。在目前的工作中,我们集中在碰撞后微秒内发生的动态破坏的产生和后续演变的实时调查。设计了包含透明聚合物和金属(通常是由弱或强胶粘剂粘合在一起的三层)的夹层结构模型,并对其进行了冲击加载,以研究其破坏演化机制。利用高速摄影和动态光弹性技术研究了失效模式的性质和顺序。观察到一系列复杂的破坏模式。在大多数情况下,首先出现的是界面裂纹(动态分层)。这些裂缝以剪切为主,常为声间裂缝。因此,发现初始分层是剪切驱动的,即使在20至50米/秒的中等冲击速度下,也会在极短的时间尺度上发生。观察了层间裂纹扩展与层内裂纹形成之间的过渡行为。由动剪切脱层产生的开口(亚音速)层内裂纹扩展到模型夹层结构的核心层,并在达到足够高的生长速度时最终分叉。
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