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Impact resistance of nacre-like composites diversely patterned by 3D printing

机译:用3D打印改变珍珠灰色复合材料的抗冲击性

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摘要

Multi-layered composites structured by replicating biological creatures are very promising protective material applicable in various industries for the outstanding mechanical characteristics. Particularly, nacre is the most sought-after creature for biomimicry due to the exceptional impact resistance, secured by hierarchically patterned architecture. Therefore, numerous efforts have been devoted aiming to develop high functional composites by mimicking the nacre. However, optimization of dimensions and material properties for the nacre-like geometry has not been fully investigated thus far. In this study, we utilize a combination of fabrication, testing, and simulation to explore an optimal design of the nacre-like composite. Various types of 3D nacre-like architecture are designed, and corresponding specimens are fabricated using a dual-extruder 3D printer. Under drop weight impact loading, impact performances of each specimen are demonstrated. The test is simulated with finite element models of the nacre-like composite, and the experiment and numerical results are in good agreement. Both results reveal that the nacre-like composite outperforms the monolithic stiff material upon impact. Furthermore, adequate dimensions of each constituent and desirable material properties are determined. This insight on the nacre-like design can be employed as a guideline toward further optimization for a new generation of high-performance material systems.
机译:通过复制生物生物构成的多层复合材料是非常有前途的保护材料,适用于各种行业,用于出色的机械特性。特别是,珍珠素是由于耐抗冲击性的卓越抗冲击性而受到后追踪的生物,由分层图案化的架构固定。因此,旨在通过模仿珍珠蛋白来开发高功能复合材料的许多努力。然而,到目前为止,尚未完全研究纯粹样的几何形状的尺寸和材料特性的优化。在这项研究中,我们利用了制造,测试和仿真的组合来探索珍珠灰色复合材料的最佳设计。设计了各种类型的3D种类的架构,并使用双挤出机3D打印机制造相应的样品。在滴重量冲击载荷下,证明了每个样本的影响性能。用丁种复合材料的有限元模型模拟测试,实验和数值结果非常吻合。这两种结果表明,丁香的复合材料在撞击时优于整体僵硬的材料。此外,确定每个组分和期望的材料特性的足够尺寸。对珍珠棉设计的洞察力可以作为进一步优化新一代高性能材料系统的指导。

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