Zhu Houyao, Chen Shouyan, Shen Teng, Wang Ruikun, Liu Jie
School of Mechanical and Electric Engineering, Guangzhou University, Guangzhou 510006, China.
Materials (Basel). 2021 Feb 15;14(4):917. doi: 10.3390/ma14040917.
Origami has played an increasingly central role in designing a broad range of novel structures due to its simple concept and its lightweight and extraordinary mechanical properties. Nonetheless, most of the research focuses on mechanical responses by using homogeneous materials and limited studies involving buckling loads. In this study, we have designed a carbon fiber reinforced plastic (CFRP) origami metamaterial based on the classical Miura sheet and composite material. The finite element (FE) modelling process's accuracy is first proved by utilizing a CFRP plate that has an analytical solution of the buckling load. Based on the validated FE modelling process, we then thoroughly study the buckling resistance ability of the proposed CFRP origami metamaterial numerically by varying the folding angle, layer order, and material properties, finding that the buckling loads can be tuned to as large as approximately 2.5 times for mode 5 by altering the folding angle from 10° to 130°. With the identical rate of increase, the shear modulus has a more significant influence on the buckling load than Young's modulus. Outcomes reported reveal that tunable buckling loads can be achieved in two ways, i.e., origami technique and the CFRP material with fruitful design freedoms. This study provides an easy way of merely adjusting and controlling the buckling load of lightweight structures for practical engineering.
由于折纸具有简单的概念、轻质且非凡的机械性能,它在设计各种新颖结构中发挥着越来越核心的作用。尽管如此,大多数研究都集中在使用均质材料的力学响应上,而涉及屈曲载荷的研究有限。在本研究中,我们基于经典三浦折叠板和复合材料设计了一种碳纤维增强塑料(CFRP)折纸超材料。首先通过使用具有屈曲载荷解析解的CFRP板证明了有限元(FE)建模过程的准确性。基于经过验证的FE建模过程,我们随后通过改变折叠角度、层数顺序和材料属性,对所提出的CFRP折纸超材料的抗屈曲能力进行了数值深入研究,发现通过将折叠角度从10°改变到130°,模式5的屈曲载荷可调整到大约2.5倍之大。以相同的增长率,剪切模量对屈曲载荷的影响比杨氏模量更大。报告的结果表明,可以通过两种方式实现可调谐的屈曲载荷,即折纸技术和具有丰富设计自由度的CFRP材料。本研究为实际工程中仅通过调整和控制轻质结构的屈曲载荷提供了一种简便方法。