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基于介质管上倾斜螺旋光栅的渐近条边界条件的模态分析,该介质管作为多波束全息棒状天线的圆柱超表面。

Modal Analysis with Asymptotic Strips Boundary Conditions of Skewed Helical Gratings on Dielectric Pipes as Cylindrical Metasurfaces for Multi-Beam Holographic Rod Antennas.

作者信息

Ng Mou Kehn Malcolm, Lin Ting-Wei, Chen Wei-Chuan

机构信息

Institute of Communications Engineering, National Yang Ming Chiao Tung University, Hsinchu 30010, Taiwan.

出版信息

Sensors (Basel). 2024 Dec 19;24(24):8119. doi: 10.3390/s24248119.

DOI:10.3390/s24248119
PMID:39771854
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11678967/
Abstract

A core dielectric cylindrical rod wrapped in a dielectric circular pipe whose outer surface is enclosed by a helical conducting strip grating that is skewed along the axial direction is herein analyzed using the asymptotic strip boundary conditions along with classical vector potential analysis. Targeted for use as a cylindrical holographic antenna, the resultant field solutions facilitate the aperture integration of the equivalent cylindrical surface currents to obtain the radiated far fields. As each rod section of a certain skew angle exhibits a distinct modal attribute; this topology allows for the distribution of the cylindrical surface impedance via the effective refractive index to be modulated, as in gradient-index (GRIN) materials. Beam steering can also be achieved by altering the skew angle via mechanical sliding motion while leaving the cylindrical structure itself unchanged, as opposed to impractically reconfiguring the geometrical and material parameters of the latter to attain each new beam direction. The results computed by the program code based on the proposed technique in terms of the modal dispersion and radiation patterns are compared with simulations by a software solver. Manufactured prototypes are measured, and experimentally acquired dispersion diagrams and radiation patterns are favorably compared with theoretical predictions.

摘要

本文使用渐近带边界条件并结合经典矢量势分析,对一个核心介质圆柱棒进行了分析,该圆柱棒包裹在一个介质圆管中,介质圆管的外表面由沿轴向倾斜的螺旋导电带光栅包围。作为圆柱形全息天线使用的目标,所得的场解有助于对等效圆柱面电流进行孔径积分,以获得辐射远场。由于具有一定倾斜角的每个棒段都表现出独特的模态属性;这种拓扑结构允许通过有效折射率来调制圆柱面阻抗的分布,就像梯度折射率(GRIN)材料一样。与不切实际地重新配置圆柱结构的几何和材料参数以获得每个新的波束方向相反,通过机械滑动运动改变倾斜角,同时保持圆柱结构本身不变,也可以实现波束转向。将基于所提出技术的程序代码计算得到的模态色散和辐射方向图结果与软件求解器的模拟结果进行了比较。对制造的原型进行了测量,并将实验获得的色散图和辐射方向图与理论预测进行了良好的比较。

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