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Fluid-structure interaction and its effect on the performance of composite structures under air-blast loading

机译:鼓风载荷作用下流固耦合及其对复合结构性能的影响

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Three material systems: E-glass Vinyl-Ester (EVE) composites, sandwich composites with EVE facesheet and monolithic foam core (2 different core thicknesses), and monolithic aluminum alloy plates, were subjected to shock wave loading to study their blast response and fluid-structure interaction behaviors. High-speed photography systems were utilized to obtain the real-time side-view and back face deformation images. A 3-D Digital Image Correlation (DIC) technique was used to analyze the real-time back face displacement fields and subsequently obtain the characteristic fluid-structure interaction time. The reflected pressure profiles and the deflection of the back face center point reveal that the areal density plays an important role in the fluid-structure interaction. The predictions from Taylor's model (classical solution, does not consider the compressibility) and model by Wang et al. (considers the compressibility) were compared with the experimental results. These results indicated that the model by Wang et al. can predict the experimental results accurately, especially during the characteristic fluid-structure interaction time. Further study revealed that the fluid-structure interaction between the fluid and the sandwich composites cannot be simplified as the fluid-structure interaction between the fluid and the facesheet. Also, it was observed that the core thickness affects the fluid-structure interaction behavior of sandwich composites.
机译:三种材料系统:电子玻璃乙烯酯(EVE)复合材料,具有EVE面板和整体泡沫芯(两种不同厚度的芯)的夹心复合材料以及整体铝合金板受到冲击波载荷,以研究其爆炸响应和流体结构相互作用行为。利用高速摄影系统获得实时的侧视图和背面变形图像。使用3-D数字图像相关(DIC)技术分析实时背面位移场,然后获得特征性的流固耦合时间。反射压力分布和背面中心点的挠度表明,面密度在流固耦合中起着重要作用。 Wang等人根据泰勒模型(经典解决方案,不考虑可压缩性)和模型的预测。 (考虑可压缩性)与实验结果进行了比较。这些结果表明Wang等人的模型。可以准确地预测实验结果,尤其是在特征性的流固耦合过程中。进一步的研究表明,流体和夹心复合材料之间的流体-结构相互作用不能简化,因为流体和面板之间的流体-结构相互作用。而且,观察到芯厚度影响夹心复合材料的流体-结构相互作用行为。

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