Zhang Honglin, Ye Jianhao
School of Electronic and Information Engineering, South China University of Technology, No. 381 Wushan Avenue, Guangzhou 510641, China.
Sensors (Basel). 2024 Jul 17;24(14):4641. doi: 10.3390/s24144641.
Communication systems need antennas with wide bandwidths to provide large throughput, while imaging radars benefit from high gain for increased range and wide bandwidths for high-resolution imaging. This paper presents the design and evaluation of a wideband, high-gain antenna that achieves an average gain of 9.7 dBi over a bandwidth of 1.49 GHz to 3.92 GHz by using multiple in-phase radiating apertures. The antenna has a unique structure with a central rectangular short-circuited patch sandwiched between two back-to-back U-shaped radiating patches and two flanking H-shaped short-circuited patches. Each of the U-shaped patches employs a coplanar waveguide as feeding to achieve ultra-wideband impedance matching. Benefiting from design arrangement, in-phase electrical field distributions appear at the gaps between the patches that result in equivalent radiating magnetic currents in the same direction. Theory analysis shows that the close-spaced, same-direction magnetic currents created by the radiating apertures intensify the radiation and increase antenna gain within its impedance bandwidth. Simulated data show that the use of the coplanar waveguide feeding and short-circuited patches increase the bandwidth from 65 MHz to 2.43 GHz. Moreover, the short-circuited patches increase the gain by 3.45 dB at 2.4 GHz. Simulation and measurement results validate the design and show that the antenna features a maximum gain of 11.3 dBi and an average gain of 9.7 dBi in a fractional bandwidth of 89.8%. Because of the high gain values and the wide bandwidth, the antenna is particularly suited for long-range communication systems and high-resolution radar applications.
通信系统需要具有宽带宽的天线来提供高吞吐量,而成像雷达则受益于高增益以增加探测距离以及宽带宽以实现高分辨率成像。本文介绍了一种宽带、高增益天线的设计与评估,该天线通过使用多个同相辐射孔径,在1.49 GHz至3.92 GHz的带宽上实现了9.7 dBi的平均增益。该天线具有独特的结构,一个中心矩形短路贴片夹在两个背对背的U形辐射贴片和两个侧翼H形短路贴片之间。每个U形贴片采用共面波导馈电以实现超宽带阻抗匹配。得益于设计布局,贴片之间的间隙处出现同相电场分布,从而在相同方向上产生等效辐射磁流。理论分析表明,辐射孔径产生的近距离、同方向磁流会增强辐射并增加天线在其阻抗带宽内的增益。仿真数据表明,使用共面波导馈电和短路贴片可将带宽从65 MHz增加到2.43 GHz。此外,短路贴片在2.4 GHz时将增益提高了3.45 dB。仿真和测量结果验证了该设计,结果表明该天线在89.8%的分数带宽内具有11.3 dBi的最大增益和9.7 dBi的平均增益。由于高增益值和宽带宽,该天线特别适用于远程通信系统和高分辨率雷达应用。