...
首页> 外文期刊>Science Advances >Origami lattices with free-form surface ornaments
【24h】

Origami lattices with free-form surface ornaments

机译:折纸格子与自由曲面装饰

获取原文
           

摘要

Lattice structures are used in the design of metamaterials to achieve unusual physical, mechanical, or biological properties. The properties of such metamaterials result from the topology of the lattice structures, which are usually three-dimensionally (3D) printed. To incorporate advanced functionalities into metamaterials, the surface of the lattice structures may need to be ornamented with functionality-inducing features, such as nanopatterns or electronic devices. Given our limited access to the internal surfaces of lattice structures, free-form ornamentation is currently impossible. We present lattice structures that are folded from initially flat states and show that they could bear arbitrarily complex surface ornaments at different scales. We identify three categories of space-filling polyhedra as the basic unit cells of the cellular structures and, for each of those, propose a folding pattern. We also demonstrate “sequential self-folding” of flat constructs to 3D lattices. Furthermore, we folded auxetic mechanical metamaterials from flat sheets and measured the deformation-driven change in their negative Poisson’s ratio. Finally, we show how free-form 3D ornaments could be applied on the surface of flat sheets with nanometer resolution. Together, these folding patterns and experimental techniques present a unique platform for the fabrication of metamaterials with unprecedented combination of physical properties and surface-driven functionalities.
机译:格状结构用于超材料的设计中,以实现不同寻常的物理,机械或生物学特性。此类超材料的属性是由晶格结构的拓扑结构产生的,通常是三维(3D)打印的。为了将高级功能集成到超材料中,晶格结构的表面可能需要装饰有功能诱导特征,例如纳米图案或电子设备。鉴于我们对晶格结构内表面的访问有限,因此目前无法进行自由形式的装饰。我们介绍了从最初的平面状态折叠起来的晶格结构,并表明它们可以承受任意比例的任意复杂的表面装饰。我们确定三种类型的空间填充多面体作为细胞结构的基本单位单元,并针对每种结构提出折叠模式。我们还演示了平面构造到3D晶格的“顺序自折叠”。此外,我们从平板折叠了拉力机械超材料,并测量了变形驱动的负泊松比变化。最后,我们展示了如何将自由形式的3D装饰物应用于具有纳米分辨率的平板表面。这些折叠模式和实验技术共同为超材料的制造提供了一个独特的平台,具有前所未有的物理特性和表面驱动功能的组合。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号