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Modelling of low-energy/low-velocity impact on Nomex honeycomb sandwich structures with metallic skins

机译:低能量/低速度对带有金属蒙皮的Nomex蜂窝夹芯结构的影响建模

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摘要

In the aircraft industry, manufacturers have to decide quickly whether an impacted sandwich needs repairing or not. Certain computation tools exist at present but they are very time-consuming and they also fail to perfectly model the physical phenomena involved in an impact. In a previous publication, the authors demonstrated the possibility of representing the NomexTM honeycomb coreudby a grid of nonlinear springs and have pointed out both the structural behaviour of the honeycomb and the influence of core-skin boundary conditions. This discrete approach accurately predicts the static indentation on honeycomb core alone and the indentation on sandwich structure with metal skins supported on rigid flat support. In this study, the domain of validity of this approach is investigated.udIt is found that the approach is not valid for sharp projectiles on thin skins. In any case, the spring elements used to model the honeycomb cannot take into account the transverse shear that occurs in the core during the bending of a sandwich. To overcome this strong limitation, a multi-level approach is proposed in the present article. In this approach, the sandwich structure is modelled byudMindlin plate elements and the computed static contact law is implemented in a nonlinear spring located between the impactor and the structure. Thus, it is possible to predict the dynamic structural response in the case of low-velocity/low-energy impact on metal-skinnedudsandwich structures. A good correlation with dynamic experimental tests is achieved.
机译:在飞机工业中,制造商必须迅速决定受影响的三明治是否需要维修。当前存在某些计算工具,但是它们非常耗时,并且也无法完美地模拟影响中涉及的物理现象。在以前的出版物中,作者展示了用非线性弹簧网格表示NomexTM蜂窝芯的可能性,并指出了蜂窝的结构行为和芯-皮边界条件的影响。这种离散的方法可以准确地单独预测蜂窝芯上的静态压痕,以及将金属蒙皮支撑在刚性平板支架上的三明治结构的压痕。在本研究中,研究了这种方法的有效性。 ud发现该方法不适用于薄皮肤上的尖锐弹丸。在任何情况下,用于模拟蜂窝的弹簧元件都不能考虑在三明治弯曲过程中在芯中发生的横向剪切。为了克服这一强大的局限性,本文提出了一种多层次的方法。在这种方法中,三明治结构由 udMindlin板单元建模,并且所计算的静态接触定律在位于冲击器和结构之间的非线性弹簧中实现。因此,在对金属蒙皮的夹心结构进行低速/低能量冲击的情况下,可以预测动态结构响应。实现了与动态实验测试的良好关联。

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