Hussain Rifaqat, Abou-Khousa Mohamed, Iqbal Naveed, Algarni Abdullah, Alhuwaimel Saad I, Zerguine Azzedine, Sharawi Mohammad S
Electrical Engineering Department, King Fahd University for Petroleum and Minerals (KFUPM), Dhahran 31261, Saudi Arabia.
Department of Electrical Engineering and Computer Science, Khalifa University of Science and Technology, Abu Dhabi 127788, United Arab Emirates.
Sensors (Basel). 2022 Feb 25;22(5):1808. doi: 10.3390/s22051808.
A shared aperture 2-element multiple-input-multiple-output (MIMO) antenna design for 5G standards is presented in this study, one which uses the same radiating structure to cover both the sub-6GHz and millimeter-wave (millimeter-wave) bands. The proposed antenna comprises four concentric pentagonal slots that are uniformly separated from one another. For the sub-6GHz band, the antenna is excited by a single open-end microstrip transmission-line, while a 1 × 8 power divider (PD) connected via a T-junction structure excites the millimeter-wave band. Both the sub-6GHz and mm-wave antennas operate in a MIMO configuration. The proposed antenna design was fabricated on a 120 × 60 mm substrate with an edge-to-edge distance of 49 mm. The proposed sub-6GHz antenna covers the following frequency bands: 4-4.5 GHz, 3.1-3.8 GHz, 2.48-2.9 GHz, 1.82-2.14 GHz, and 1.4-1.58 GHz, while the millimeter-wave antenna operates at 28 GHz with at least 500 MHz of bandwidth. A complete antenna analysis is provided via a step-by-step design procedure, an equivalent circuit diagram showing the operation of the shared aperture antenna, and current density analysis at both millimeter-wave and sub-6GHz bands. The proposed antenna design is also characterized in terms of MIMO performance metrics with a good MIMO operation with maximum envelop correlation coefficient value of 0.113. The maximum measured gain and efficiency values obtained were 91% and 8.5 dBi over the entire band of operation. The antenna is backward compatible with 4G bands and also encompasses the sub-6GHz and 28 GHz bands for future 5G wireless communcation systems.
本研究提出了一种用于5G标准的共享孔径二元多输入多输出(MIMO)天线设计,该设计使用相同的辐射结构来覆盖低于6GHz频段和毫米波频段。所提出的天线包括四个彼此均匀间隔的同心五边形缝隙。对于低于6GHz频段,天线由单端开路微带传输线激励,而通过T型结结构连接的1×8功率分配器(PD)激励毫米波频段。低于6GHz频段和毫米波频段的天线均以MIMO配置工作。所提出的天线设计制作在一块120×60mm的基板上,边缘到边缘距离为49mm。所提出的低于6GHz频段天线覆盖以下频段:4 - 4.5GHz、3.1 - 3.8GHz、2.48 - 2.9GHz、1.82 - 2.14GHz和1.4 - 1.58GHz,而毫米波天线在28GHz工作,带宽至少为500MHz。通过逐步设计过程、展示共享孔径天线工作的等效电路图以及毫米波频段和低于6GHz频段的电流密度分析,提供了完整的天线分析。所提出的天线设计还根据MIMO性能指标进行了表征,具有良好的MIMO工作性能,最大包络相关系数值为0.113。在整个工作频段上获得的最大实测增益和效率值分别为8.5dBi和91%。该天线与4G频段向后兼容,还涵盖低于6GHz频段和28GHz频段,适用于未来的5G无线通信系统。