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Design of Cellular Composite Sandwich Panels for Maximum Blast Resistance Via Energy Absorption

机译:通过能量吸收获得最大抗爆性能的蜂窝复合夹芯板设计

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This paper presents a design methodology for optimizing the energy absorption under blast loads of cellular composite sandwich panels. A combination of dynamic finite element analysis (FEA) and simplified analytical modeling techniques are used. The analytical modeling calculates both the loading effects and structural response resulting from user-input charge sizes and standoff distances and offers the advantage of expediting iterative design processes. The FEA and the analytical model results are compared and contrasted then used to compare the energy response of various cellular composite sandwich panels under blast loads, where various core shapes and dimensions are the focus. As a result, it is concluded that the optimum shape consists of vertically-oriented webs while the optimum dimensions can be generally described as those which cause the most inelasticity without failure of the webs. These dimensions are also specifically quantified for select situations. This guidance is employed, along with the analytical method developed by the authors and considerations of the influences of material properties, to suggest a general design procedure thaignt is a simple yet sufficiently accurate method for design. The suggested des approach is also demonstrated through a design example.
机译:本文提出了一种设计方法,用于优化蜂窝复合材料夹芯板在爆炸载荷下的能量吸收。结合使用动态有限元分析(FEA)和简化的分析建模技术。分析模型可以计算用户输入的装料量和支座距离所产生的载荷效应和结构响应,并具有加快迭代设计过程的优势。比较和对比了有限元分析和分析模型的结果,然后将其用于比较爆炸载荷下各种多孔复合材料夹芯板的能量响应,其中,各种形状和尺寸是重点。结果得出结论,最佳形状由垂直取向的腹板组成,而最佳尺寸通常可以描述为在没有腹板损坏的情况下引起最大弹性的那些。这些尺寸也针对特定情况进行了具体量化。该指南与作者开发的分析方法以及材料性能影响的考虑一起使用,以表明一般的设计过程是一种简单但足够准确的设计方法。还通过一个设计示例演示了建议的des方法。

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