Wu Fan, Sun Bo-Hua
School of Civil Engineering & Institute of Mechanics and Technology, Xi'an University of Architecture and Technology, Xian, 710055, Shaanxi, China.
School of Civil Engineering & Institute of Mechanics and Technology, Xi'an University of Architecture and Technology, Xian, 710055, Shaanxi, China.
J Mech Behav Biomed Mater. 2022 Dec;136:105459. doi: 10.1016/j.jmbbm.2022.105459. Epub 2022 Oct 15.
The cuttlebone structure is a complex porous bionic structure with an asymmetric S-shaped wall structure connecting laminar septa. Studies have shown that the cuttlebone structure has a low weight, high strength, and excellent energy absorption capability. To establish bio-inspired structures with superior biological functions, researchers have proposed the sinusoidally corrugated cuttlebone-like array structure (SCS). In this study, referring to Euler's theory combined with the Gaussian curvature, the effects of the thickness t, height H, amplitude A, and period P of the SCS under compressive shearing were analyzed. Through finite element calculations and parameter sensitivity analysis, the optimized Su4-Sl2 SCS was obtained. Based on the optimization results, a structure named the elliptical corrugated cuttlebone-like array structure (ECS) was designed. Various ECSs were prepared via three-dimensional (3D) printing, and the compression and shear deformation characteristics of the ECSs were analyzed through experiments and simulations. The results showed that the bearing capacities of the new ECSs were improved compared with those of SCSs; moreover, Eu60-El90, Eu60-El60, and Eu60-El60 ECSs had the best compressive and shear capacities. From the perspective of the stress, the peak compression, peak shear stress in the y-direction, and peak shear stress in the x-direction were increased by 14.2%, 32.8%, and 14.9%, respectively. From the perspective of the energy, the compressive strain energy, shear strain energy in the y-direction, and shear strain energy in the x-direction were increased by 22.8%, 33.0%, and 78.1%, respectively.
乌贼骨结构是一种复杂的多孔仿生结构,其具有连接层状隔板的不对称S形壁结构。研究表明,乌贼骨结构重量轻、强度高且能量吸收能力优异。为了建立具有卓越生物学功能的仿生结构,研究人员提出了正弦波纹状乌贼骨样阵列结构(SCS)。在本研究中,参考欧拉理论并结合高斯曲率,分析了SCS在压缩剪切作用下的厚度t、高度H、振幅A和周期P的影响。通过有限元计算和参数敏感性分析,得到了优化后的Su4-Sl2 SCS。基于优化结果,设计了一种名为椭圆波纹状乌贼骨样阵列结构(ECS)的结构。通过三维(3D)打印制备了各种ECS,并通过实验和模拟分析了ECS的压缩和剪切变形特性。结果表明,新型ECS的承载能力比SCS有所提高;此外,Eu60-El90、Eu60-El60和Eu60-El60 ECS具有最佳的压缩和剪切能力。从应力角度来看,峰值压缩、y方向的峰值剪切应力和x方向的峰值剪切应力分别提高了14.2%、32.8%和14.9%。从能量角度来看,压缩应变能、y方向的剪切应变能和x方向的剪切应变能分别提高了22.8%、33.0%和78.1%。