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Numerical modelling of honeycomb core crush behaviour

机译:蜂窝芯破碎行为的数值模拟

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In this work several numerical techniques for modelling the transverse crush behaviour of honeycomb core materials were developed and compared with test data on aluminium and Nomex~(TM) honeycomb. The methods included a detailed honeycomb micromechanics model, a homogenised material model suitable for use in FE code solid elements, and a homogenised discrete/finite element model used in a semi-adaptive numerical coupling (SAC) technique. The micromechanics model is shown to be suitable for honeycomb design, since it may be used to compute crush energy absorption for different honeycomb cell sizes, cell wall thicknesses and cell materials. However, the very fine meshes required make it unsuitable for analysis of large sandwich structures. The homogenised FE model may be used for such structures, but gives poor agreement when failure is due to core crushing. The SAC model is shown to be most appropriate for use in structural simulations with extensive compression core crushing failures, since the discrete particles are able to model the material compaction during local crushing.
机译:在这项工作中,开发了几种用于模拟蜂窝芯材料横向挤压行为的数值技术,并将其与铝和Nomex〜(TM)蜂窝的测试数据进行了比较。这些方法包括详细的蜂窝微力学模型,适用于FE代码实体元素的均质材料模型以及用于半自适应数值耦合(SAC)技术的均质离散/有限元模型。该微力学模型显示适用于蜂窝设计,因为它可用于计算不同蜂窝单元尺寸,单元壁厚和单元材料的压碎能量吸收。但是,所需的非常细的网格使其不适用于大型夹层结构的分析。均质化的有限元模型可以用于这种结构,但是当由于岩心破碎而导致破坏时,一致性较差。由于离散颗粒能够对局部压实过程中的材料压实进行建模,因此显示出SAC模型最适合用于具有广泛压缩芯破碎失败的结构模拟。

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