Tao Tao, Li Lizheng, He Qiang, Wang Yonghui, Guo Junlan
Guangzhou Metro Design & Research Institute Co., Ltd., Guangzhou 510010, China.
School of Mechanical Engineering, Jiangsu University of Science and Technology, Zhenjiang 212000, China.
Materials (Basel). 2024 Mar 4;17(5):1191. doi: 10.3390/ma17051191.
In order to improve the impact resistance of sandwich panels under low-velocity impact, the lotus leaf vein is selected as a biological prototype to design a bio-inspired honeycomb (BIH) sandwich panel. ABAQUS is used to establish and effectively verify the finite element (FE) model of the BIH sandwich panel. To systematically compare and study the mechanical properties of BIH and conventional hexagonal honeycomb sandwich panels under low-velocity impact, the maximum displacement of face-sheets, the deformation mode, the plastic energy consumption and the dynamic response curve of the impact end are presented. At the same time, the performance differences between them are revealed from the perspective of an energy absorption mechanism. Furthermore, the influence of the circumscribed circle diameter ratio of the BIH trunk to branch (), the thickness ratio of the trunk to branch () and the impact angle () on impact resistance is studied. Finally, the BIH sandwich panel is further optimized by using the response surface method. It can be concluded that, compared to conventional hexagonal honeycomb sandwich panels, the addition of walls in the BIH sandwich panel reduces the maximum deformation of the rear face-sheet by 10.29% and increases plastic energy consumption by 8.02%. Properly adjusting the structural parameters can effectively enhance the impact resistance of the BIH sandwich panel.
为提高夹芯板在低速冲击下的抗冲击性能,选取荷叶叶脉作为生物原型来设计一种仿生蜂窝(BIH)夹芯板。利用ABAQUS建立并有效验证了BIH夹芯板的有限元(FE)模型。为系统地比较和研究BIH夹芯板与传统六边形蜂窝夹芯板在低速冲击下的力学性能,给出了面板的最大位移、变形模式、塑性能耗以及冲击端的动态响应曲线。同时,从能量吸收机制的角度揭示了它们之间的性能差异。此外,研究了BIH主干与分支的外接圆直径比()、主干与分支的厚度比()以及冲击角()对抗冲击性能的影响。最后,采用响应面法对BIH夹芯板进行进一步优化。可以得出结论,与传统六边形蜂窝夹芯板相比,BIH夹芯板中添加的壁使背面面板的最大变形减小了10.29%,塑性能耗增加了8.02%。适当调整结构参数可有效提高BIH夹芯板的抗冲击性能。