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受龟壳启发的抗冲击结构设计与优化

Impact Resistant Structure Design and Optimization Inspired by Turtle Carapace.

作者信息

Pei Baoqing, Guo Lei, Wu Xueqing, Hu Mengyuan, Wu Shuqin, Wang Yangwei

机构信息

Beijing Key Laboratory for Design and Evaluation Technology of Advanced Implantable & Interventional Medical Devices, Beijing Advanced Innovation Center for Biomedical Engineering, School of Biological Science and Medical Engineering, Beihang University, Beijing 100083, China.

School of Big Data and Information, Shanxi College of Technology, Shuozhou 036000, China.

出版信息

Materials (Basel). 2022 Apr 15;15(8):2899. doi: 10.3390/ma15082899.

Abstract

The turtle carapace has a high level of protection, due to its unique biological structure, and there is great potential to use the turtle carapace structure to improve the impact resistance of composite materials using bionic theory. In this paper, the chemical elements of the turtle carapace structure, as well as its mechanical properties, were investigated by studying the composition of the compounds in each part. In addition, the bionic sandwich structure, composed of the plate, core, and backplate, was designed using modeling software based on the microstructure of the keratin scutes, spongy bone, and the spine of the turtle carapace. Additionally, finite element analysis and drop-weight experiments were utilized to validate the impact-resistant performance of the bionic structures. The numerical results show that all of the bionic structures had improved impact resistance to varying degrees when compared with the control group. The experimental results show that the split plate, the core with changing pore gradients, and the backplate with stiffener all have a considerable effect on the impact-resistance performance of overall composite structures. This preliminary study provides theoretical support for composite material optimization.

摘要

龟甲因其独特的生物结构具有高度的防护性,利用仿生学原理借鉴龟甲结构来提高复合材料的抗冲击性具有巨大潜力。本文通过研究龟甲各部分化合物的组成,对龟甲结构的化学元素及其力学性能进行了研究。此外,基于龟甲角质盾片、松质骨和脊椎的微观结构,使用建模软件设计了由面板、芯层和背板组成的仿生夹层结构。另外,利用有限元分析和落锤试验来验证仿生结构的抗冲击性能。数值结果表明,与对照组相比,所有仿生结构的抗冲击性均有不同程度的提高。实验结果表明,裂板、具有变化孔隙梯度的芯层以及带有加强筋的背板对整体复合材料结构的抗冲击性能都有显著影响。这项初步研究为复合材料的优化提供了理论支持。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0b57/9030828/eee72d4cff31/materials-15-02899-g001.jpg

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