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Characterization of compressive behavior of PVC foam infilled composite sandwich panels with different corrugated core shapes

机译:不同波纹芯形状的PVC泡沫填充复合夹芯板的压缩行为表征

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Increasing the development in industrial technology and need for energy absorption, lightweight and cost effective composite materials such as composite sandwich panels have been in the center of attention. In this paper energy absorption properties of proposed composite sandwich panels with different corrugated core geometries under quasi static out of plane loading conditions is experimentally investigated. Three different corrugated shapes, i.e. rectangular, trapezoidal and triangular fabricated with the same thickness are used. The specimens were subjected to three different quasi-static compression loading condition i.e. concentrated, linear and planar. The effect of the number of unit cells and corrugated core geometries in determining the overall deformation and local collapse behavior of the panels also investigated. Based on the comparative results, it is found that three unit cell rectangular corrugated geometry possessed the best performance than other types of corrugated core geometries. Moreover, through visual observation the damage mechanisms under loading conditions and subsequent failure modes are inspected. Plastic buckling of cell walls and foam densification identified as the initial failure modes and by continuing the loading, fiber breakage, localized delamination as well as debonding between the skins and the core were the main damage mechanisms in these corrugated systems.
机译:随着工业技术的发展以及对能量吸收的需求,轻质且具有成本效益的复合材料(例如复合夹芯板)已成为关注的焦点。在本文中,对拟采用不同波纹芯几何形状的复合夹芯板在准静态平面外载荷条件下的能量吸收特性进行了实验研究。使用三种具有相同厚度的波纹形状,即矩形,梯形和三角形。样品经受了三种不同的准静态压缩载荷条件,即集中,线性和平面。还研究了晶胞数量和波纹芯几何形状对确定面板整体变形和局部塌陷行为的影响。根据比较结果,发现三个单位晶格矩形波纹几何形状比其他类型的波纹芯几何形状具有最佳性能。此外,通过肉眼观察,检查了载荷条件下的破坏机理以及随后的破坏模式。这些波纹系统的主要损坏机理是,细胞壁的塑性屈曲和泡沫致密化被认为是最初的破坏方式,并且通过继续加载,纤维断裂,局部分层以及表皮和芯层之间的剥离是主要的破坏机理。

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