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首页> 外文期刊>International journal of impact engineering >The impact response of clamped sandwich beams with ordinary and hierarchical cellular cores
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The impact response of clamped sandwich beams with ordinary and hierarchical cellular cores

机译:具有普通和分级蜂窝芯的夹心夹层梁的冲击响应

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The response of clamped sandwich beams subjected to impact loading is analyzed based on the works of Fleck & Deshpande (2004) [9] and Reid et al. (2010) [14]. This study differentiates itself from that of Fleck & Deshpande in that the "conservation of momentum" method instead of the "energy balance" method is adopted to model the "compaction stage" of the core upon impact loading. Finite element method (FEM) is used to validate the developed analytical model and good agreement between the analytical method and FEM results is observed. Obtained results also show that, compared to the Fleck & Deshpande model, the present model gives improved predictions of the maximum lateral deflection of the front face and the boundary of the two regions where the cellular core is totally compacted and partly compacted. The developed model is then applied to study the effects of core relative density and core thickness on the maximum impulsive momentum that the sandwich beam can sustain (impact resistance), and near-optimum design is identified for a regular hexagonal core sandwich beam with given mass. In addition, based on the present model, the performance of sandwich beams with self-similar hierarchical hexagonal honeycomb cores under impact loading is studied. It is shown that, for given relative density, the strength of the self-similar hierarchical hexagonal honeycomb decreases with the hierarchical order increasing. Therefore, both the energy absorbed per unit mass of the core during the compaction stage and the impact resistance of the sandwich beam decrease as the hierarchical order increases.
机译:根据Fleck&Deshpande(2004)[9]和Reid等人的工作,分析了夹层夹心梁在受到冲击载荷作用下的响应。 (2010)[14]。这项研究与Fleck&Deshpande的不同之处在于,采用“动量守恒”法代替“能量平衡”法来模拟冲击载荷作用下岩心的“压实阶段”。使用有限元方法(FEM)来验证开发的分析模型,并观察到分析方法与FEM结果之间的良好一致性。所得结果还表明,与Fleck&Deshpande模型相比,本模型对蜂窝芯被完全压实和部分压实的两个区域的正面和侧面的最大横向挠度进行了改进的预测。然后,将开发的模型应用于研究堆芯相对密度和堆芯厚度对夹层梁可以承受的最大冲击动量的影响(抗冲击性),并确定了具有给定质量的规则六边形夹芯层梁的近最佳设计。 。另外,在此模型的基础上,研究了自相似分层六边形蜂窝芯夹心梁在冲击荷载作用下的性能。结果表明,对于给定的相对密度,自相似分层六角形蜂窝的强度随着分层顺序的增加而降低。因此,压实阶段在芯部的每单位质量吸收的能量和夹层梁的抗冲击性都随着等级顺序的增加而降低。

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