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An analytical and experimental investigation of sandwich composites subjected to low-velocity impact.

机译:对夹心复合材料进行低速冲击的分析和实验研究。

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This study involves an experimental and analytical investigation of low-velocity impact phenomenon in sandwich composite structures. The analytical solution of a three-dimensional finite-geometry multi-layer specially orthotropic panel subjected to static and transient transverse loading cases is presented. The governing equations of the static and dynamic formulations are derived from Reissner's functional and solved by enforcing the continuity of traction and displacement components between adjacent layers. For the dynamic loading case, the governing equations are solved by applying Fourier or Laplace transformation in time. Additionally, the static solution is extended to solve the contact problem between the sandwich laminate and a rigid sphere. An iterative method is employed to determine the sphere's unknown contact area and pressure distribution. A failure criterion is then applied to the sandwich laminate's stress and strain field to predict impact damage. The analytical accuracy of the present study is verified through comparisons with finite element models, other analyses, and through experimentation.; Low-velocity impact tests were conducted to characterize the type and extent of the damage observed in a variety of sandwich configurations with graphite/epoxy face sheets and foam or honeycomb cores. Correlation of the residual indentation and cross-sectional views of the impacted specimens provides a criterion for the extent of damage. Quasi-static indentation tests are also performed and show excellent agreement when compared with the analytical predictions. Finally, piezoelectric polyvinylidene fluoride (PVF2) film sensors are found to be effective in detecting low-velocity impact.
机译:这项研究涉及夹层复合结构中低速冲击现象的实验和分析研究。提出了三维有限正交多层正交异性正交各向异性面板在静力和瞬态横向载荷作用下的解析解。静态和动态公式的控制方程式是从Reissner函数导出的,并通过强制相邻层之间牵引力和位移分量的连续性来求解。对于动态载荷情况,通过及时应用傅里叶或拉普拉斯变换来求解控制方程。另外,扩展了静态解决方案以解决夹层板与刚性球之间的接触问题。采用迭代方法确定球体的未知接触面积和压力分布。然后将破坏准则应用于三明治层压板的应力和应变场,以预测冲击破坏。通过与有限元模型的比较,其他分析以及通过实验,验证了本研究的分析准确性。进行了低速冲击测试,以表征在使用石墨/环氧树脂面板和泡沫或蜂窝芯的各种夹心结构中观察到的损坏的类型和程度。残余压痕和受影响试样的横截面图的相关性为破坏程度提供了标准。还进行了准静态压痕测试,与分析预测相比,它们表现出极好的一致性。最后,发现压电聚偏二氟乙烯(PVF2)薄膜传感器可有效检测低速冲击。

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