通过Βiomimetic Μechanical互锁实现3d打印形状的自组装。

IF 3.4 3区 医学 Q1 ENGINEERING, MULTIDISCIPLINARY
Tino Marte, Savvas Koltsakidis, Thomas Profitiliotis, Emmanouil Tzimtzimis, Dimitrios Tzetzis
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引用次数: 0

摘要

虽然宏观自组装的早期研究在20世纪后期达到顶峰,但最近的研究继续通过创新材料和外部控制策略探索和扩大该领域的潜力。为了利用这种潜力,设计并3d打印了一个单元格,可以形成面心立方晶格,并通过机械联锁的仿生机制使其稳定。在扫描电子显微镜下观察了褐纹蝽翅膀的耦合结构,为联锁机制的研究提供了生物学启示。在五种不同的自组装过程和不同的压缩情况下,共研究了20个单位细胞。自组装测试后,最高平均34%的单晶胞保持稳定,20%的单晶胞机械互锁。在单个单元电池上进行的压缩测试表明,该电池可以承受高达1000 N的力而不会产生任何塑性变形。人工组装5个单元细胞的金字塔结构,并在压缩试验中进行评估。他们的平均压缩力为294 n。由于第一项研究集中在通过机械联锁的自组装上,进一步的研究将改变单细胞生产和自组装过程,预计将改善这些结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Towards Self-Assembling 3D-Printed Shapes Through Βiomimetic Μechanical Interlocking.

While early studies on macroscopic self-assembly peaked in the late 20th century, recent research continues to explore and expand the field's potential through innovative materials and external control strategies. To harness this potential, a unit cell was designed and 3D-printed that could form a face-centered cubic lattice and stabilize it through a biomimetic mechanism for mechanical interlocking. The wing coupling structures of the brown marmorated stink bug were examined under a scanning electron microscope to be used as a source of bio-inspiration for the interlocking mechanism. A total of 20 unit cells were studied in five different self-assembly processes and in different compression scenarios. A maximum average of 34% of unit cells remained stable, and 20% were mechanically interlocked after self-assembly tests. The compression tests performed on a single unit cell revealed that the cell can withstand forces up to 1000 N without any plastic deformation. Pyramid configurations from 5-unit cells were manually assembled and assessed in compression tests. They showed an average compression force of 294 N. As the first study focused on self-assembly through mechanical interlocking, further studies that change the unit cell production and self-assembly processes are expected to improve upon these results.

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来源期刊
Biomimetics
Biomimetics Biochemistry, Genetics and Molecular Biology-Biotechnology
CiteScore
3.50
自引率
11.10%
发文量
189
审稿时长
11 weeks
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