Design and additive manufacturing of bionic hybrid structure inspired by cuttlebone to achieve superior mechanical properties and shape memory function

IF 16.1 1区 工程技术 Q1 ENGINEERING, MANUFACTURING International Journal of Extreme Manufacturing Pub Date : 2024-05-24 DOI:10.1088/2631-7990/ad5084
Luhao Yuan, Dongdong Gu, Xin Liu, Keyu Shi, Kaijie Lin, He Liu, Han Zhang, D. Dai, Jianfeng Sun, Wenxin Chen, Jie Wang
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Abstract

Lightweight porous materials with high load-bearing, damage tolerance and energy absorption as well as intelligence of shape recovery after material deformation are beneficial and critical for many applications, e.g., aerospace, automobiles, electronics, etc. Cuttlebone produced in the cuttlefish has evolved vertical walls with the optimal corrugation gradient, enabling stress homogenization, significant load bearing, and damage tolerance to protect the organism from high external pressures in the deep sea. This work illustrated that the complex hybrid wave shape in cuttlebone walls, becoming more tortuous from bottom to top, creates a lightweight, load-bearing structure with progressive failure. By mimicking the cuttlebone, a novel bionic hybrid structure (BHS) was proposed, and as a comparison, a regular corrugated structure (RCS) and a straight wall structure (SWS) were designed. Three types of designed structures have been successfully manufactured by laser powder bed fusion with NiTi powder. The LPBF-processed BHS exhibited a total porosity of 0.042% and a good dimensional accuracy with a peak deviation of 17.4 μm. Microstructural analysis indicated that the LPBF-processed BHS had a strong (001) crystallographic orientation and an average size of 9.85 μm. Mechanical analysis revealed the LPBF-processed BHS could withstand over 25 000 times its weight without significant deformation and had the highest specific energy absorption value (5.32 J/g) due to the absence of stress concentration and progressive wall failure during compression. Cyclic compression testing showed that LPBF-processed BHS possessed superior viscoelastic and elasticity energy dissipation capacity. Importantly, the uniform reversible phase transition from martensite to austenite in the walls enables the structure to largely recover its pre-deformation shape when heated (over 99% recovery rate). These design strategies can serve as valuable references for the development of intelligent components that possess high mechanical efficiency and shape memory capabilities.
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受海螵蛸启发设计和增材制造仿生混合结构,实现优异的机械性能和形状记忆功能
轻质多孔材料具有高承载力、损伤容限和能量吸收能力,以及材料变形后的形状恢复能力,这对许多应用领域(如航空航天、汽车、电子等)都非常有益和重要。墨鱼体内产生的海螵蛸进化出具有最佳波纹梯度的垂直壁,使应力均匀化、承载能力显著提高,并具有损伤耐受性,从而保护生物体免受深海中高外部压力的影响。这项研究表明,海螵蛸壁上复杂的混合波形自下而上变得更加曲折,从而形成了一种轻质、承重、渐进失效的结构。通过模仿海螵蛸,提出了一种新型仿生混合结构(BHS),并设计了规则波纹结构(RCS)和直壁结构(SWS)作为对比。通过激光粉末床熔融镍钛粉末,成功制造出了所设计的三种结构。LPBF 加工的 BHS 的总孔隙率为 0.042%,尺寸精度良好,峰值偏差为 17.4 μm。微观结构分析表明,LPBF加工的BHS具有很强的结晶取向(001),平均尺寸为9.85微米。力学分析表明,LPBF加工的BHS可以承受25 000倍以上的重量而不发生明显变形,并且由于在压缩过程中没有应力集中和渐进式壁面破坏,因此具有最高的比能量吸收值(5.32 J/g)。循环压缩测试表明,经过 LPBF 处理的 BHS 具有卓越的粘弹性和弹性消能能力。重要的是,壁中从马氏体到奥氏体的均匀可逆相变使该结构在加热时能在很大程度上恢复变形前的形状(恢复率超过 99%)。这些设计策略可作为开发具有高机械效率和形状记忆能力的智能组件的宝贵参考。
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来源期刊
International Journal of Extreme Manufacturing
International Journal of Extreme Manufacturing Engineering-Industrial and Manufacturing Engineering
CiteScore
17.70
自引率
6.10%
发文量
83
审稿时长
12 weeks
期刊介绍: The International Journal of Extreme Manufacturing (IJEM) focuses on publishing original articles and reviews related to the science and technology of manufacturing functional devices and systems with extreme dimensions and/or extreme functionalities. The journal covers a wide range of topics, from fundamental science to cutting-edge technologies that push the boundaries of currently known theories, methods, scales, environments, and performance. Extreme manufacturing encompasses various aspects such as manufacturing with extremely high energy density, ultrahigh precision, extremely small spatial and temporal scales, extremely intensive fields, and giant systems with extreme complexity and several factors. It encompasses multiple disciplines, including machinery, materials, optics, physics, chemistry, mechanics, and mathematics. The journal is interested in theories, processes, metrology, characterization, equipment, conditions, and system integration in extreme manufacturing. Additionally, it covers materials, structures, and devices with extreme functionalities.
期刊最新文献
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