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MAGNETIC FIELD ASSISTED 3D PRINTING OF LIMPET TEETH INSPIRED POLYMER MATRIX COMPOSITE WITH COMPRESSION REINFORCEMENT

机译:磁场辅助3D印刷颗粒齿启发了聚合物基质复合材料,采用压缩加固

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Lightweight and cost-effective polymer matrix composites (PMCs) with extraordinary mechanical performance will be a key to the next generation of diverse industrial applications such as aerospace, electric automobile, and biomedical devices. Limpet teeth made of mineral-polymer composites have been proved as nature's strongest material due to the unique hierarchical architectures of mineral fiber alignment. Here, we present an approach to build limpet teeth inspired structural materials with precise control of geometric morphologies of microstructures by magnetic field-assisted 3D printing (MF-3DP). α-Iron (Ⅲ) oxide-hydroxide nanoparticles (α-FeOOHs) are aligned by the magnetic field during 3D printing and aligned α-FeOOHs bundles are further grown to aligned goethite-based bundles (aGBs) by rapid thermal treatment after printing. The mechanical reinforcement of goethite-based fillers in PMCs can be modulated by adjusting the geometric morphology and alignment of mineral particles encapsulated inside the 3D printed PMCs. In order to identify the mechanical enhancement mechanism, physics-based modeling, simulation, and tests were conducted and the results further guided the design of bioinspired goethite-based PMCs. The correlation of the geometric morphology of self-assembled α -FeOOHs, curing characteristics of α-FeOOHs/polymer composite, and process parameters were identified to establish the optimal design of goethite-based PMCs. The 3D-printed PMCs with aGBs show promising mechanical reinforcement. This study opens intriguing perspectives for designing high strength 3D printed PMCs on the basis of bioinspired architectures with customized configurations.
机译:具有非凡机械性能的轻质和经济高效的聚合物基质复合材料(PMC)将是下一代多样化的工业应用,如航空航天,电动汽车和生物医学设备。由于矿物纤维排列的独特分层架构,已被证明是由矿物 - 聚合物复合材料制成的矿物 - 聚合物复合材料制成的颗粒齿。在这里,我们提出了一种建造恒星齿的方法,其具有精确控制微观结构的微观形态的精确控制通过磁场辅助的3D打印(MF-3DP)。 α-铁(Ⅲ)氧化物 - 氢氧化物纳米颗粒(α-FeO​​HS)由3D印刷期间的磁场对齐,并进一步生长对齐的α-FeO​​OHs束以通过在印刷后快速热处理对准甲酸酯基束(agbs)。通过调节封装在3D印刷PMC内部的封装在3D印刷PMC内部的几何形态和对准的几何形态和对准,可以调节PMC中的机械加强PMC中的填充剂。为了识别机械增强机制,进行了物理学的建模,模拟和测试,结果进一步引导了BioinSpired基础的PMC的设计。鉴定了自组装α-FeO​​OHs,α-FeO​​hs /聚合物复合材料的固化特性的几何形态的相关性,并确定了基于Geethite的PMC的最佳设计。具有AGBS的3D印刷PMC显示出充满希望的机械加固。本研究开辟了在具有定制配置的BioInspired架构的基础上设计高强度3D印刷PMC的兴趣视角。

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