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通过电荷编程沉积增材制造实现的超轻型天线。

Ultra-light antennas via charge programmed deposition additive manufacturing.

作者信息

Wang Zhen, Hensleigh Ryan, Xu Zhenpeng, Wang Junbo, Park James JuYoung, Papathanasopoulos Anastasios, Rahmat-Samii Yahya, Rayne Zheng Xiaoyu

机构信息

Advanced Manufacturing and Metamaterials Laboratory, Department of Material Science and Engineering, University of California, Berkeley, CA, USA.

Department of Civil and Environmental Engineering, University of California, Los Angeles, CA, USA.

出版信息

Nat Commun. 2025 Jan 8;16(1):427. doi: 10.1038/s41467-024-53513-w.

Abstract

The demand for lightweight antennas in 5 G/6 G communication, wearables, and aerospace applications is rapidly growing. However, standard manufacturing techniques are limited in structural complexity and easy integration of multiple material classes. Here we introduce charge programmed multi-material additive manufacturing platform, offering unparalleled flexibility in antenna design and the capability for rapid printing of intricate antenna structures that are unprecedented or necessitate a series of fabrication routes. Demonstrating its potential, we present a transmitarray antenna composed of an interconnected, multi-layered array of dielectric/conductive S-ring unit cells, reducing 94% mass of conventional antenna configurations. A fully printed circular polarized transmitarray system fed by a source and a Risley prism antenna system operating at 19 GHz both show close alignment between testing results and numerical simulations. This printing method establishes a universal platform, propelling discovery of new antenna designs and enabling data-driven design and optimizations where rapid production of antenna designs is crucial.

摘要

5G/6G通信、可穿戴设备及航空航天应用领域对轻质天线的需求正在迅速增长。然而,标准制造技术在结构复杂性和多种材料类别的轻松集成方面存在局限性。在此,我们引入电荷编程多材料增材制造平台,该平台在天线设计方面提供了无与伦比的灵活性,并具备快速打印复杂天线结构的能力,这些结构是前所未有的,或者需要一系列制造工艺。为展示其潜力,我们展示了一种由相互连接的多层介质/导电S形环单元组成的发射阵列天线,其质量比传统天线配置减少了94%。一个由源馈电的全印刷圆极化发射阵列系统和一个工作在19GHz的里斯利棱镜天线系统,其测试结果与数值模拟均显示出紧密的一致性。这种打印方法建立了一个通用平台,推动新型天线设计的发现,并在天线设计的快速生产至关重要的数据驱动设计和优化中发挥作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/742a/11711757/1e9a048f83ba/41467_2024_53513_Fig1_HTML.jpg

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