Alhawari Adam R H, Saeidi Tale, Almawgani Abdulkarem Hussein Mohammed, Hindi Ayman Taher, Alghamdi Hisham, Alsuwian Turki, Awwad Samer A B, Imran Muhammad Ali
Electrical Engineering Department, College of Engineering, Najran University, Najran 66462, Saudi Arabia.
Electrical and Electronic Engineering Department, Universiti Teknologi PETRONAS, Bandar Seri Iskandar 32610, Malaysia.
Micromachines (Basel). 2021 Dec 14;12(12):1559. doi: 10.3390/mi12121559.
A low-profile Multiple Input Multiple Output (MIMO) antenna showing dual polarization, low mutual coupling, and acceptable diversity gain is presented by this paper. The antenna introduces the requirements of fifth generation (5G) and the satellite communications. A horizontally (4.8-31 GHz) and vertically polarized (7.6-37 GHz) modified antipodal Vivaldi antennas are simulated, fabricated, and integrated, and then their characteristics are examined. An ultra-wideband (UWB) at working bandwidths of 3.7-3.85 GHz and 5-40 GHz are achieved. Low mutual coupling of less than -22 dB is achieved after loading the antenna with cross-curves, staircase meander line, and integration of the metamaterial elements. The antennas are designed on a denim textile substrate with εr = 1.4 and h = 0.5 mm. A conductive textile called ShieldIt is utilized as conductor with conductivity of 1.8 × 10. After optimizing the proposed UWB-MIMO antenna's characteristics, it is increased to four elements positioned at the four corners of a denim textile substrate to be employed as a UWB-MIMO antenna for handset communications, 5G, Ka and Ku band, and satellite communications (X-band). The proposed eight port UWB-MIMO antenna has a maximum gain of 10.7 dBi, 98% radiation efficiency, less than 0.01 ECC, and acceptable diversity gain. Afterwards, the eight-ports antenna performance is examined on a simulated real voxel hand and chest. Then, it is evaluated and compared on physical hand and chest of body. Evidently, the simulated and measured results show good agreement between them. The proposed UWB-MIMO antenna offers a compact and flexible design, which is suitably wearable for 5G and satellite communications applications.
本文提出了一种具有双极化、低互耦和可接受分集增益的低剖面多输入多输出(MIMO)天线。该天线引入了第五代(5G)和卫星通信的要求。对水平极化(4.8 - 31 GHz)和垂直极化(7.6 - 37 GHz)的改进型对映体维瓦尔第天线进行了仿真、制作和集成,然后对其特性进行了研究。在3.7 - 3.85 GHz和5 - 40 GHz的工作带宽上实现了超宽带(UWB)。在天线加载交叉曲线、阶梯曲折线并集成超材料元件后,实现了小于 -22 dB的低互耦。天线设计在相对介电常数εr = 1.4、厚度h = 0.5 mm的牛仔布纺织基板上。一种名为ShieldIt的导电纺织品被用作导体,其电导率为1.8×10。在优化了所提出的超宽带MIMO天线的特性后,将其增加到四个单元,放置在牛仔布纺织基板的四个角上,用作手机通信、5G、Ka和Ku频段以及卫星通信(X频段)的超宽带MIMO天线。所提出的八端口超宽带MIMO天线具有10.7 dBi的最大增益、98%的辐射效率、小于0.01的ECC以及可接受的分集增益。之后,在模拟的真实体素手和胸部上对八端口天线的性能进行了测试。然后,在人体的物理手和胸部上进行了评估和比较。显然,模拟结果和测量结果显示出良好的一致性。所提出的超宽带MIMO天线提供了紧凑且灵活的设计,适合用于5G和卫星通信应用的可穿戴设备。