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Effect of geometrical and mechanical properties on behaviour of sandwich beams with functionally graded face sheets under indentation loading

机译:压痕载荷下几何和力学性能对功能梯度面板夹层梁性能的影响

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摘要

Improved high-order sandwich beam theory is used to model the local deformation ofsandwich beams with aluminium/alumina functionally graded (FG) face sheets loaded by central indentor. First-order shear deformation theory is used for the FG face sheets while three-dimensional elasticity is used for the flexible core. Using the model to consider the way in which different wavelengths of sinusoidal pressure loading on the upper FG face sheet are transmitted to the core and lower FG face sheet, two spreading length scales λ t and λ b are introduced and calculated; λ t and λ b, which are two functions of the beam material and geometrical properties, characterize the length over which a load on the upper surface of a beam is spread out by the face sheets and the core. Comparison of the semi-wavelength of the sinusoidal pressure loading (L/m) on the upper FG face sheet with length scales λ t and λ b illustrate the importance of these length scales in describing whether the face sheets act in a rigid or a flexible manner. When the semi-wavelength (L/m) of the applied load in the present example is higher than λ t (or λ b), 10–90 per cent (or 5–70 per cent) of the contact load is transmitted locally to the core (or from the core to the lower FG face sheet) for the geometries and materials analysed. Conversely, when L/m is lower than λ t (or λ 1b), the contact load from the upper FG face sheet with a maximum of 58 per cent (or 70 per cent) is spread out over a wider area of the core (or from the core is spread out over a wider area of the lower FG face sheet). Reasonable agreement is found between the theoretical predictions in this study and finite element method results by ANSYS and the results published in literature for special cases.
机译:改进的高阶夹层梁理论用于模拟中心压头加载的铝/氧化铝功能梯度(FG)面板的夹层梁的局部变形。一阶剪切变形理论用于FG面板,而三维弹性用于柔性芯。使用该模型来考虑将不同波长的正弦压力载荷在上FG面板上传输到核心和下FG面板的方式,两个扩展长度标度λ t 和λ b 引入并计算; λ t 和λ b 是梁材料和几何特性的两个函数,它们描述了梁上表面载荷分散的长度,该长度由面板和核心。用长度标度λ t 和λ b 比较FG上面板正弦压力载荷的半波长(L / m),表明了这些长度的重要性在描述面板是否以刚性或柔性方式起作用时进行缩放。在本示例中,当所施加负载的半波长(L / m)大于λ t (或λ b )时,则为10-90%(或对于所分析的几何形状和材料,接触负载的5%至70%会局部传输到纤芯(或从纤芯到较低的FG面板)。相反,当L / m小于λ t (或λ 1 b)时,来自FG上面板的最大接触载荷为58%(或70%)分布在核心的较宽区域(或从核心分布在较低的FG面板的较宽区域)。在本研究的理论预测与ANSYS的有限元方法结果以及特殊情况下文献中发表的结果之间找到了合理的一致性。

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    《Journal of Materials Design and Applications》 |2011年第4期|p.231-244|共14页
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  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
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