采用解耦和共缺陷接地方法提高毫米波MIMO天线性能

Poonam Tiwari, Vishant Gahlaut, Meenu Kaushik, Anshuman Shastri, Vivek Arya, Issa Elfergani, Chemseddine Zebiri, Jonathan Rodriguez
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引用次数: 1

摘要

提出了一种利用解耦结构和共同缺陷接地结构(DGS)来提高双端口多输入多输出(MIMO)天线的隔离度的方法。天线工作在24至40 GHz的频率范围内。MIMO天线设计的创新之处在于将两个尺寸为35 × 35 × 1.6 mm3的弧形对称单元垂直放置在一起。采用元件垂直布置的天线的好处可以通过其整体性能指标的增强来举例说明。这些元件包括一个带有四分之一波变压器(QWT)的微带馈电。该概念与去耦技术和缺陷地结构协同作用,可显著增强毫米波MIMO天线的隔离性。这些方法共同实现了令人印象深刻的宽带宽。实现了有效的解耦方法,隔离性能显著提高了5 dB。该天线具有10 dB阻抗匹配,15 GHz(46.87%)带宽,28 dB以上的出色隔离度和4.6 dB的理想增益。通过评估包络相关系数(ECC)和分集增益(DG)等分集参数,分析了天线在毫米波应用中的性能,实现值分别为0.0016和9.992 dB。采用CST软件进行仿真。为了验证这些发现,进行了实验调查,确认了模拟的准确性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enhancing Performance of Millimeter Wave MIMO Antenna with a Decoupling and Common Defected Ground Approach
An approach is presented to enhance the isolation of a two-port Multiple Input Multiple Output (MIMO) antenna using a decoupling structure and a common defected ground structure (DGS) that physically separates the antennas from each other. The antenna operates in the 24 to 40 GHz frequency range. The innovation in the presented MIMO antenna design involves the novel integration of two arc-shaped symmetrical elements with dimensions of 35 × 35 × 1.6 mm3 placed perpendicular to each other. The benefits of employing an antenna with elements arranged perpendicularly are exemplified by the enhancement of its overall performance metrics. These elements incorporate a microstrip feed featuring a quarter-wave transformer (QWT). This concept synergizes with decoupling techniques and a defected ground structure to significantly enhance isolation in a millimeter wave (mm wave) MIMO antenna. These methods collectively achieve an impressively wide bandwidth. Efficient decoupling methodologies have been implemented, yielding a notable increase of 5 dB in isolation performance. The antenna exhibits 10 dB impedance matching, with a 15 GHz (46.87%) wide bandwidth, excellent isolation of more than 28 dB, and a desirable gain of 4.6 dB. Antennas have been analyzed to improve their performance in mm wave applications by evaluating diversity parameters such as envelope correlation coefficient (ECC) and diversity gain (DG), with achieved values of 0.0016 and 9.992 dB, respectively. The simulation is conducted using CST software. To validate the findings, experimental investigations have been conducted, affirming the accuracy of the simulations.
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