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Analytical solution for cylindrical bending of two-layered corrugated and webcore sandwich panels

机译:两层瓦楞纸和腹板夹芯板圆柱弯曲的解析解

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We analytically investigate infinitesimal cylindrical bending deformations of two-layered triangular corrugated and webcore linearly elastic sandwich panels by using the mechanics of materials approach and the classical plate theory. The model is validated by comparing its predictions with the solution by the finite element method of the linear elasticity equations for plane strain deformations. The model can accurately capture the secondary bending of the facesheets, manifested as changes in their curvature between the webs and the resulting changes in the axial stresses, from being tensile to possibly compressive, that the commonly-employed homogenization schemes fail to capture. Subsequently, the model is used to analyze several problems with the sandwich panel having a pinned support at the left edge and a roller support at the right edge, and a uniformly distributed load applied on the top facesheet of the panel. It is found that the core plates mostly deform in compression and bending, respectively, for corrugated and web core panels. Furthermore, a significant fraction of the work done by the external load on the structure is absorbed as strain energy of deformations of the core plates near the supports. For four hybrid combinations of corrugated and webcore configurations in two-layered panels, the combination with the upper corrugated core set-up has the least maximum face sheet deflection and axial stress. The analytical technique can be easily extended to multi-layered hybrid configurations and provides quick means of finding efficient strain-energy absorbing hybrid designs.
机译:我们利用材料力学和经典板理论,分析研究了两层三角波纹和腹板线性弹性夹芯板的极小圆柱弯曲变形。通过将其预测结果与平面应变变形的线性弹性方程的有限元方法的解进行比较来验证该模型。该模型可以准确捕获面板的二次弯曲,表现为腹板之间的曲率变化以及由此产生的轴向应力变化(从拉伸到可能的压缩),而这种变化是常用的均化方案无法捕获的。随后,该模型用于分析夹心板的几个问题,该夹心板在左边缘具有固定支撑,在右边缘具有滚动支撑,并且在面板的顶部面板上施加了均匀分布的载荷。已经发现,对于瓦楞和腹板芯板,芯板分别在压缩和弯曲时主要变形。此外,由结构上的外部载荷完成的功的很大一部分被吸收为支撑件附近的芯板变形的应变能。对于在两层面板中的瓦楞纸和腹板配置的四个混合组合,具有上部瓦楞纸芯设置的组合具有最小的最大面板挠度和轴向应力。该分析技术可以轻松扩展到多层混合结构,并提供快速的方法来寻找有效的应变能量吸收混合设计。

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