探索三维天线阵列的汉南限制

Ran Ji, Chongwen Huang, Xiaoming Chen, Wei E. I. Sha, Zhaoyang Zhang, Jun Yang, Kun Yang, Chau Yuen, Mérouane Debbah
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引用次数: 0

摘要

汉南极限成功地将二维阵列的指向性特性与孔径增益极限联系起来,为大型二维平面天线阵列提供了辐射效率上限。这表明阵列元件之间的相互耦合效应不可避免地会导致辐射效率下降。然而,这一限制是基于无限大二维阵列的假设得出的,这意味着它对于小尺寸阵列来说并不是一个准确的定律。在本文中,我们扩展了这一理论,提出了有限尺寸二维阵列辐射效率上限的估计公式。此外,我们还分析了由两个并行二维阵列组成的三维阵列结构。具体来说,我们提供了无限和有限尺寸阵列的相互耦合强度评估公式,并推导出三维阵列的基本效率上限。此外,根据已确定的固定孔径天线阵增益极限,我们推导出了有限尺寸三维阵列的可实现增益极限。除了性能分析,我们还研究了所考虑的三维阵列结构的空间辐射特性,为给定能量衰减阈值下的二维相位设置提供了可行区域。通过模拟,我们证明了我们提出的理论的有效性,以及三维阵列在各种情况下获得更好空间覆盖的优势。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Exploring Hannan Limitation for 3D Antenna Array
Hannan Limitation successfully links the directivity characteristics of 2D arrays with the aperture gain limit, providing the radiation efficiency upper limit for large 2D planar antenna arrays. This demonstrates the inevitable radiation efficiency degradation caused by mutual coupling effects between array elements. However, this limitation is derived based on the assumption of infinitely large 2D arrays, which means that it is not an accurate law for small-size arrays. In this paper, we extend this theory and propose an estimation formula for the radiation efficiency upper limit of finite-sized 2D arrays. Furthermore, we analyze a 3D array structure consisting of two parallel 2D arrays. Specifically, we provide evaluation formulas for the mutual coupling strengths for both infinite and finite size arrays and derive the fundamental efficiency limit of 3D arrays. Moreover, based on the established gain limit of antenna arrays with fixed aperture sizes, we derive the achievable gain limit of finite size 3D arrays. Besides the performance analyses, we also investigate the spatial radiation characteristics of the considered 3D array structure, offering a feasible region for 2D phase settings under a given energy attenuation threshold. Through simulations, we demonstrate the effectiveness of our proposed theories and gain advantages of 3D arrays for better spatial coverage under various scenarios.
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