Xu Tianfan, Xu Mengchi, Lu Haitao, Cai Xiao
Research Center of Applied Electromagnetics, Nanjing University of Information Science and Technology, Nanjing 210044, China.
Sensors (Basel). 2023 Nov 13;23(22):9137. doi: 10.3390/s23229137.
Tunnel communication always suffers from path loss and multipath effects caused by surrounding walls. Meanwhile, the traditional leaky coaxial cables are expensive to deploy, inconvenient to operate, and difficult to maintain, leading to many problems in practical use. To solve the abovementioned problems, a low-profile printed dipole array operating at 3.5 GHz with bidirectional endfire radiation is designed based on the method of maximum power transmission efficiency (MMPTE). By setting two virtual test receiving dipoles at the two opposite endfire directions and then maximizing the power transmission efficiency between the printed dipole array to be designed and the test receiving antennas, the optimal amplitudes and phases for the array elements are obtained. Based on the optimal distributions of excitations, the simulation results show that the proposed eight-element printed dipole array can simultaneously generate two mirrored endfire beams towards opposite directions. Furthermore, the corresponding normalized cross-polarization levels are lower than -22.3 dBi both in the azimuth and elevation planes. The peak endfire gain is 10.7 dBi with maintenance of higher than 10 dBi from 3.23 GHz to 3.66 GHz, which is suitable for tunnel communication.
隧道通信总是受到周围墙壁引起的路径损耗和多径效应的影响。同时,传统的泄漏同轴电缆部署成本高、操作不便且维护困难,在实际应用中导致诸多问题。为解决上述问题,基于最大功率传输效率(MMPTE)方法设计了一种工作在3.5GHz的具有双向端射辐射的低剖面印刷偶极子阵列。通过在两个相反的端射方向设置两个虚拟测试接收偶极子,然后最大化待设计的印刷偶极子阵列与测试接收天线之间的功率传输效率,获得阵列单元的最佳幅度和相位。基于激励的最优分布,仿真结果表明所提出的八元印刷偶极子阵列能够同时向相反方向产生两个镜像端射波束。此外,在方位面和仰角面中相应的归一化交叉极化电平均低于-22.3dBi。端射峰值增益为10.7dBi,在3.23GHz至3.66GHz范围内保持高于10dBi,适用于隧道通信。