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Bio-inspired nacre-like composites via simple, fast, and versatile techniques such as doctor-blading

机译:通过简单,快速和多功能技术(如医生Blading)的简单,快速和多功能的技术,生物启发式的珍珠蛋白复合材料

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Theoretical and experimental studies show that the high performance of biological composites such as nacre and bone originates from a sophisticated microstructure, where hard and stiff inclusions form a staggered, brick wall-like structure within a softer and more deformable matrix. This morphology results in outstanding combinations of stiffness, strength and toughness, and therefore it is very attractive to duplicate it in engineering composites. Here, we demonstrate how simple, fast and versatile techniques such as doctor-blading can be used to make such bio-inspired composites. We fabricated and characterized composites made of micron-sized alumina tablets embedded in epoxy matrices. Scanning Electron Microscopy (SEM) images show that the tablets are well dispersed, aligned, and staggered through the polymer matrix resulting in a nacre-like material. The tensile behavior of these composites shows a good combination of stiffness, strength and energy dissipation. We also developed finite element models of the staggered microstructure, which properly capture the interactions between inclusions and the effects of mineral concentration. These models can be used to optimize the microstructure and fully harness the nacre-like structure and mechanisms, in new materials with applications in aerospace, defense or biomedical engineering.
机译:理论和实验研究表明,生物复合材料如芽孢杆菌和骨骼的高性能来自复杂的微观结构,其中硬质且夹杂物在更柔软和更可变形的基质内形成交错的砖墙状结构。这种形态导致刚度,强度和韧性的突出组合,因此在工程复合材料中复制它非常有吸引力。在这里,我们展示了可以使用博士学博士的简单,快速和多功能的技术,以制造这种生物启发复合材料。我们用嵌入环氧基质中的微米尺寸氧化铝片制成的复合材料制成和表征复合材料。扫描电子显微镜(SEM)图像表明,通过聚合物基质,平板电脑通过聚合物基质进行良好分散,对齐和交错,得到丁香的材料。这些复合材料的拉伸行为显示出刚度,强度和能量耗散的良好组合。我们还开发了交错微观结构的有限元模型,其适当地捕获夹杂物与矿物质浓度的影响之间的相互作用。这些型号可用于优化微观结构,并充分利用具有航空航天,防御或生物医学工程应用的新材料的珍珠灰色结构和机制。

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