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Investigation of the equivalent material properties and failure stress of the re-entrant composite lattice structures using an analytical model

机译:使用分析模型对再参赛复合晶格结构的等效材料性能和失效应力研究

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摘要

In the present study, a novel theoretical model is developed, based on classical laminate theory, to predict the equivalent mechanical properties of the re-entrant lattice structures, which composed of continuous fiber reinforced composite struts. Three main mechanism of stretching, flexing and hinging are considered and a general closed-form formulation is derived to estimate the auxetic honeycomb's elastic and shear modulus as well as Poisson's ratios. In spite of previous studies in which the response of honeycomb structures is modeled using beam theory, here, each strut of unit cell is expressed as a composite laminate with orthotropic mechanical properties and classical laminate theory is implemented to calculate the mechanical constants. In addition, using the available relations, the elastic buckling stress and failure load of the auxetic unit cell is evaluated. The proposed model is validated using experimental results, which are available from the previous studies as well as FE simulations. A parametric study is also conducted on the model to study the effects of cell angle and honeycomb's density on the mechanical properties and failure stresses of the re-entrant structure. The results show that, the proposed analytical model can finely predict the equivalent and failure properties of the auxetic honeycomb structures. Furthermore, it is observed that, for the considered re-entrant composite structures with the cell angles between -25 to 25, the vertical strut fails due to the damage evolution and for the unit cells with other cell angles, the buckling failure is determinative.
机译:在本研究中,基于经典层压理论,开发了一种新颖的理论模型,以预测再生晶格结构的等同机械性能,其由连续纤维增强复合材料支柱组成。考虑了三种伸展,弯曲和铰接的主要机制,衍生出一般的闭合形式配方,以估计辅助蜂窝的弹性和剪切模量以及泊松比。尽管先前的研究,其中使用光束理论建模蜂窝结构的响应,这里,每个支柱的单位细胞被表示为具有正交机械性能的复合层压材料,并实现了经典层压理论以计算机械常数。另外,使用可用关系,评估辅助单元电池的弹性屈曲应力和故障负荷。使用实验结果验证所提出的模型,可从先前的研究以及FE模拟中获得。在模型上还进行了参数研究,以研究细胞角和蜂窝密度对再参赛体结构的机械性能和失效应力的影响。结果表明,所提出的分析模型可以精细地预测扶手蜂窝结构的等效和故障特性。此外,观察到,对于所考虑的具有-25至25之间的电池角的考虑的再参赛体复合结构,由于损坏的进化和具有其他细胞角的单元电池,垂直支柱失效,屈曲失败是确定的。

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