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采用折纸和喷墨打印技术的连续可调多层频率选择表面。

Continuous-range tunable multilayer frequency-selective surfaces using origami and inkjet printing.

机构信息

School of Electrical and Computer Engineering, Georgia Institute of Technology, Atlanta, GA 30332.

School of Civil and Environmental Engineering, Georgia Institute of Technology, Atlanta, GA 30332.

出版信息

Proc Natl Acad Sci U S A. 2018 Dec 26;115(52):13210-13215. doi: 10.1073/pnas.1812486115. Epub 2018 Dec 13.

Abstract

The tremendous increase in the number of components in typical electrical and communication modules requires low-cost, flexible and multifunctional sensing, energy harvesting, and communication modules that can readily reconfigure, depending on changes in their environment. Current subtractive manufacturing-based reconfigurable systems offer limited flexibility (limited finite number of discrete reconfiguration states) and have high fabrication cost and time requirements. Thus, this paper introduces an approach to solve the problem by combining additive manufacturing and origami principles to realize tunable electrical components that can be reconfigured over continuous-state ranges from folded (compact) to unfolded (large surface) configurations. Special "bridge-like" structures are introduced along the traces that increase their flexibility, thereby avoiding breakage during folding. These techniques allow creating truly flexible conductive traces that can maintain high conductivity even for large bending angles, further enhancing the states of reconfigurability. To demonstrate the idea, a Miura-Ori pattern is used to fabricate spatial filters-frequency-selective surfaces (FSSs) with dipole resonant elements placed along the fold lines. The electrical length of the dipole elements in these structures changes when the Miura-Ori is folded, which facilitates tunable frequency response for the proposed shape-reconfigurable FSS structure. Higher-order spatial filters are realized by creating multilayer Miura-FSS configurations, which further increase the overall bandwidth of the structure. Such multilayer Miura-FSS structures feature the unprecedented capability of on-the-fly reconfigurability to different specifications (multiple bands, broadband/narrowband bandwidth, wide angle of incidence rejection), requiring neither specialized substrates nor highly complex electronics, holding frames, or fabrication processes.

摘要

典型的电气和通信模块中组件数量的大幅增加,需要低成本、灵活和多功能的传感、能量收集和通信模块,这些模块可以根据环境变化进行重新配置。目前基于减法制造的可重构系统提供的灵活性有限(离散的重新配置状态数量有限),并且制造成本和时间要求高。因此,本文提出了一种结合增材制造和折纸原理的方法来解决这个问题,以实现可调谐的电气组件,可以在连续状态范围内从折叠(紧凑)到展开(大表面)的配置进行重新配置。特殊的“桥状”结构沿着迹线引入,增加了它们的灵活性,从而避免在折叠过程中断裂。这些技术允许创建真正灵活的导电迹线,即使对于大的弯曲角度,也能保持高导电性,进一步增强了可重构性的状态。为了演示这个想法,使用三原折纸图案来制造具有偶极谐振元件的空间滤波器-频率选择表面(FSS),这些元件沿着折叠线放置。在这些结构中,当三原折纸折叠时,偶极子元件的电气长度会发生变化,这为提出的形状可重构 FSS 结构提供了可调谐的频率响应。通过创建多层三原 FSS 配置来实现高阶空间滤波器,进一步增加了结构的整体带宽。这种多层三原 FSS 结构具有前所未有的可在不同规格之间(多个频带、宽带/窄带带宽、宽入射角抑制)进行实时可重构的能力,既不需要特殊的衬底,也不需要高度复杂的电子设备、框架或制造工艺。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f6c6/6310857/c7327ee8ebe1/pnas.1812486115fig01.jpg

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