Hamada Haitham, Ali Mohamed Mamdouh M, Shams Shoukry I, Khalaf Ashraf A M, Allam A M M A
Electrical Engineering Department, Higher Technological Institute, HTI, 10th of Ramadan city, Egypt.
Department of Electrical Engineering, Faculty of Engineering, Assiut University, Assiut, Egypt.
Sci Rep. 2025 Jul 2;15(1):23649. doi: 10.1038/s41598-025-08589-9.
This paper introduces an innovative design and analysis of a magneto-electric dipole antenna exhibiting high-gain, ultra-wideband operation, and stable radiation characteristics in the 60-GHz mm-wave band. Furthermore, the trapped printed gap waveguide (TPGW) technology is presented as a low-cost, minimal-loss, and low-dispersion guiding structure to feed the proposed antenna. The antenna covers a relative matching bandwidth of over 33.33% from 50 to 70 GHz with a maximum gain up to 8 dBi. In addition, the antenna is integrated with a perforated dielectric substrate layer lens on the antenna's broadside location, enhancing the gain by an average of 3 dB along its entire operational bandwidth. Moreover, an efficient approach for designing a large ME dipole antenna array and its corporate feeding network is presented. Both ME-dipole sub-arrays and the out-of-phase power divider with WR-15 standard interface are designed and studied separately, where a systematic design procedure is presented to obtain initial design parameters. A 2 × 2 planar antenna array is designed and implemented, featuring proper integration between the radiating elements and a differentially fed wide-bandwidth TPGW power divider. Then, the operation of the individual components has been assessed using simulation and measurements. Furthermore, an in-depth mathematical analysis is presented to investigate the potential resonance conditions arising from disparities in complementary components. Consequently, a proposed solution is provided to break the resonance loop and shield the two opposing sub-arrays. The 2 × 2 array of ME-dipoles has overall dimensions of 1.6[Formula: see text] ×1.4[Formula: see text] and demonstrates an impedance bandwidth ([Formula: see text]- 10 dB) exceeding 33.33% at 60 GHz, with a peak gain of over 18 dBi.
本文介绍了一种磁电偶极天线的创新设计与分析,该天线在60GHz毫米波频段具有高增益、超宽带工作和稳定的辐射特性。此外,提出了陷获印刷缝隙波导(TPGW)技术,作为一种低成本、低损耗和低色散的馈电结构来为所提出的天线馈电。该天线在50至70GHz范围内覆盖了超过33.33%的相对匹配带宽,最大增益高达8dBi。此外,该天线在其宽边位置集成了一个穿孔介质基底层透镜,在整个工作带宽内平均增益提高了3dB。此外,还提出了一种设计大型磁电偶极天线阵列及其共形馈电网络的有效方法。分别设计并研究了磁电偶极子子阵列和具有WR-15标准接口的异相功率分配器,给出了获得初始设计参数的系统设计步骤。设计并实现了一个2×2平面天线阵列,其辐射单元与差分馈电宽带TPGW功率分配器之间实现了合理集成。然后,通过仿真和测量评估了各个组件的工作情况。此外,还进行了深入的数学分析,以研究互补组件差异引起的潜在谐振条件。因此,提出了一种解决方案来打破谐振回路并屏蔽两个相对的子阵列。2×2磁电偶极子阵列的整体尺寸为1.6[公式:见原文]×1.4[公式:见原文],在60GHz时展示出超过33.33%的阻抗带宽([公式:见原文]-10dB),峰值增益超过18dBi。