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模仿源于小梁骨微观结构的高强度轻质新型结构。

Mimicking high strength lightweight novel structures inspired from the trabecular bone microarchitecture.

机构信息

Hard and Soft Tissue Mechanics (HaSo TuM) Lab, Department of Mechanical Engineering, Indian Institute of Technology Ropar, Rupnagar, Punjab 140001, India.

Department of Orthopaedics, Post Graduate Institute of Medical Education and Research (PGIMER), Chandigarh 160012, India.

出版信息

Philos Trans A Math Phys Eng Sci. 2020 Mar 20;378(2167):20190448. doi: 10.1098/rsta.2019.0448. Epub 2020 Feb 3.

Abstract

Nature's evolution of a billion years has advanced flawless functionality in limitless optimized structures like bone structural adaptation in various physiological behaviours. In this study, porous structures are designed and fabricated from the nature-inspired trabecular bone microarchitecture. A three-dimensional (3D) model of the porous trabecular architecture from the compressive proximal zone of the femoral head was constructed using the micro-computed tomography scanning tool. The model was modified to get porous structures of different volume fractions varying from 20 to 40% with an increment of 10%. The obtained porous structures were 3D printed and analysed for deformation-resistant behaviour. Quasi-static compressive loading was performed at different strain rates (0.001-1 s) to get an insight into lightweight, high strength structural behaviour. Mechanical parameters, such as specific modulus, specific strength and specific energy absorption, were analysed for the optimal volume fraction. The original volume fraction (30%) of the trabecular bone shows the highest value of mechanical parameters. This study can help engineers to select and design lightweight porous structures with high energy-absorbing capacity, mimicking the desired architecture and porosity available in nature. This article is part of the theme issue 'Bioinspired materials and surfaces for green science and technology (part 3)'.

摘要

大自然经过十亿年的进化,造就了无数近乎完美的优化结构,比如在各种生理行为中骨骼结构的适应性。在这项研究中,我们从受自然启发的小梁骨微观结构中设计和制造了多孔结构。使用微计算机断层扫描工具构建了来自股骨头近端压缩区的多孔小梁结构的三维(3D)模型。对模型进行了修改,得到了体积分数从 20%到 40%,以 10%的增量变化的不同多孔结构。获得的多孔结构进行了 3D 打印并分析了其抗变形性能。在不同的应变速率(0.001-1 s)下进行准静态压缩加载,以深入了解轻量级、高强度的结构性能。为了优化体积分数,分析了特定模量、比强度和比能量吸收等机械参数。小梁骨的原始体积分数(30%)表现出最高的机械参数值。这项研究可以帮助工程师选择和设计具有高能量吸收能力的轻质多孔结构,模仿自然界中所需的结构和孔隙率。本文是主题为“绿色科学技术的仿生材料和表面(第三部分)”的一部分。

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