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OPERATIONAL PERSPECTIVES OF BIOLOGICALLY INSPIRED CAPILLARY-BASED RECONFIGURATION MECHANISMS IN MICROSTRIP PATCH ANTENNAS

机译:微条斑天线中基于生物启发的毛细血管重构机制的操作前景。

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Recent work on reconfigurable antennas and smart skins based on biologically inspired mechanisms derived from the cuttlefish has led to several novel architectures for system-level integration. One of the concepts arising from work in this area is the capillary-based reconfiguration/adaptation mechanism utilizing the displacement and/or flow of functionalized nanoparticles dispersions within the substrate of a microstrip patch antenna. Through a pressure-driven system, these capillary structures can be used to reconfigure the impedance bandwidth of the antenna. In addition to this operation, the capillary topology has also demonstrated an ability to provide a self-stimulated, or cognitive, mechanism which can compensate for a localized deformation or bending of the antenna on a flexible substrate via the associated forces from mechanical compression. In both of these cases, the use of a single capillary and series/corporate arrays of capillaries has created the opportunity to investigate some of the fundamental operational perspectives and integration techniques in the design space for microstrip antennas utilizing this reconfiguration/compensation technique. In addition to several small antenna arrays and multi-capillary configurations, an in-depth analysis of the single substrate-embedded capillary will be discussed in this paper and presentation. The resulting design equations and other analytical expressions have been derived using perturbation techniques based on the microstrip antenna's design. These demonstrate many of the limitations and possibilities from different nanoparticle geometries and material compositions as well as different capillary topologies associates with fabrication techniques. Measured, analytical, and simulated results for several antennas in this design space will be discussed to highlight the ongoing work in this area.
机译:基于墨鱼的生物学启发机制,基于天线的可重构天线和智能皮肤的最新工作已经导致了一些用于系统级集成的新颖架构。在该领域中工作引起的概念之一是基于毛细管的重构/适应机制,其利用微带贴片天线的基板内的官能化纳米颗粒分散体的位移和/或流动。通过压力驱动系统,这些毛细管结构可用于重新配置天线的阻抗带宽。除此操作外,毛细管拓扑还显示了提供自刺激或认知机制的能力,该机制可通过机械压缩产生的相关力来补偿天线在柔性基板上的局部变形或弯曲。在这两种情况下,使用单个毛细管和毛细管的系列/公司阵列为研究使用这种重新配置/补偿技术的微带天线的设计空间中的一些基本操作观点和集成技术创造了机会。除了几个小型天线阵列和多毛细管配置之外,本文和演示文稿还将讨论对单衬底嵌入式毛细管的深入分析。基于微带天线的设计,已经使用微扰技术推导了所得的设计方程式和其他分析表达式。这些证明了来自不同纳米颗粒几何形状和材料组成以及与制造技术相关的不同毛细管拓扑结构的许多局限性和可能性。将讨论此设计空间中多个天线的测量,分析和仿真结果,以突出显示该领域正在进行的工作。

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