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基于仿生学的能量吸收材料设计采用增材制造技术。

Bioinspired energy absorbing material designs using additive manufacturing.

机构信息

Department of Biomedical Engineering, University of Massachusetts, Amherst, MA 01003, USA.

Manufacturing Science Division, Energy Science and Technology Directorate, Oak Ridge National Laboratory, Oak Ridge, TN, USA.

出版信息

J Mech Behav Biomed Mater. 2021 Jul;119:104518. doi: 10.1016/j.jmbbm.2021.104518. Epub 2021 Apr 18.

DOI:10.1016/j.jmbbm.2021.104518
PMID:33882409
Abstract

Nature provides many biological materials and structures with exceptional energy absorption capabilities. Few, relatively simple molecular building blocks (e.g., calcium carbonate), which have unremarkable intrinsic mechanical properties individually, are used to produce biopolymer-bioceramic composites with unique hierarchical architectures, thus producing biomaterial-architectures with extraordinary mechanical properties. Several biomaterials have inspired the design and manufacture of novel material architectures to address various engineering problems requiring high energy absorption capabilities. For example, the microarchitecture of seashell nacre has inspired multi-material 3D printed architectures that outperform the energy absorption capabilities of monolithic materials. Using the hierarchical architectural features of biological materials, iterative design approaches using simulation and experimentation are advancing the field of bioinspired material design. However, bioinspired architectures are still challenging to manufacture because of the size scale and architectural hierarchical complexity. Notwithstanding, additive manufacturing technologies are advancing rapidly, continually providing researchers improved abilities to fabricate sophisticated bioinspired, hierarchical designs using multiple materials. This review describes the use of additive manufacturing for producing innovative synthetic materials specifically for energy absorption applications inspired by nacre, conch shell, shrimp shell, horns, hooves, and beetle wings. Potential applications include athletic prosthetics, protective head gear, and automobile crush zones.

摘要

自然界提供了许多具有出色能量吸收能力的生物材料和结构。少数相对简单的分子构建块(例如碳酸钙),其内在机械性能并不突出,但它们被用于制造具有独特层次结构的生物聚合物-生物陶瓷复合材料,从而产生具有非凡机械性能的生物材料结构。几种生物材料激发了新型材料结构的设计和制造,以解决需要高能量吸收能力的各种工程问题。例如,贝壳珍珠母的微观结构启发了多材料 3D 打印结构,其能量吸收能力超过了整体材料。利用生物材料的层次结构特征,使用模拟和实验的迭代设计方法正在推动仿生材料设计领域的发展。然而,由于尺寸规模和结构层次的复杂性,仿生结构仍然具有挑战性。尽管如此,增材制造技术正在迅速发展,不断为研究人员提供使用多种材料制造复杂仿生、层次设计的能力。本文综述了使用增材制造技术生产受珍珠母、海螺壳、虾壳、角、蹄和甲虫翅膀启发的用于能量吸收应用的创新合成材料。潜在的应用包括运动假肢、头部防护装备和汽车碰撞区域。

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