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提取橙色果皮的几何形状和拓扑结构用于设计仿生吸能材料。

Extracting Geometry and Topology of Orange Pericarps for the Design of Bioinspired Energy Absorbing Materials.

作者信息

Fox Chelsea, Chen Kyle, Antonini Micaela, Magrini Tommaso, Daraio Chiara

机构信息

Division of Engineering and Applied Science, California Institute of Technology, Pasadena, CA, 91125, USA.

Department of Biotechnology and Life Sciences, University of Insubria, Varese, 21100, Italy.

出版信息

Adv Mater. 2024 Sep;36(36):e2405567. doi: 10.1002/adma.202405567. Epub 2024 Jul 27.

Abstract

As a result of evolution, many biological materials have developed irregular structures that lead to outstanding mechanical performances, like high stiffness-to-weight ratios and good energy absorption. However, reproducing these irregular biological structures in synthetic materials remains a complex design and fabrication challenge. Here, a bioinspired material design method is presented that characterizes the irregular structure as a network of building blocks, also known as tiles, and rules to connect them. Rather than replicating the biological structure one-to-one, synthetic materials are generated with the same distributions of tiles and connectivity rules as the biological material and it is shown that these equivalent materials have structure-to-property relationships similar to the biological ones. To demonstrate the method, the pericarp of the orange, a member of the citrus family known for its protective, energy-absorbing capabilities is studied. Polymer samples are generated and characterized under quasistatic and dynamic compression and display spatially-varying stiffness and good energy absorption, as seen in the biological materials. By quantifying which tiles and connectivity rules locally deform in response to loading, it is also determined how to spatially control the stiffness and energy absorption.

摘要

由于进化的结果,许多生物材料形成了不规则结构,这些结构带来了出色的力学性能,如高刚度重量比和良好的能量吸收能力。然而,在合成材料中重现这些不规则生物结构仍然是一个复杂的设计和制造挑战。在此,提出了一种受生物启发的材料设计方法,该方法将不规则结构表征为构建块(也称为瓦片)的网络以及连接它们的规则。合成材料并非一对一地复制生物结构,而是以与生物材料相同的瓦片分布和连接规则生成,结果表明这些等效材料具有与生物材料相似的结构-性能关系。为了演示该方法,对柑橘科成员橙子的果皮进行了研究,橙子果皮以其保护和能量吸收能力而闻名。生成了聚合物样品,并在准静态和动态压缩下进行了表征,这些样品表现出空间变化的刚度和良好的能量吸收能力,这与生物材料的情况类似。通过量化哪些瓦片和连接规则会因加载而局部变形,还确定了如何在空间上控制刚度和能量吸收。

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