Mira Fermín, Artiga Xavier, Llamas-Garro Ignacio, Vázquez-Gallego Francisco, Velázquez-González Jesús Salvador
Centre Tecnològic de Telecomunicacions de Catalunya (CTTC/CERCA), Av. Carl Friedrich Gauss 7, Castelldefels, 08860 Barcelona, Spain.
Micromachines (Basel). 2021 Apr 1;12(4):377. doi: 10.3390/mi12040377.
UAV assisted wireless sensor networks play a key role in the detection of toxic gases and aerosols. UAVs can be used to remotely deploy sensor nodes and then collect gas concentration readings and GPS positioning from them to delimit an affected area. For such purpose, a dual-band communication system is required, supporting GPS reception, and sensor reading data transfer, which is chosen to be at 2.4 GHz using LoRa physical layer. In this work we propose a switched-beam antenna subsystem for the sensor nodes capable not only of satisfying the dual band requirements but also of maximizing communication range or energy consumption through a good antenna polarization match and improved antenna gain. This antenna subsystem is built using dual-port, dual-band, circularly polarized antenna elements, whose design and experimental validation is carefully detailed. A low profile microstrip stacked structure has been used to obtain return loss in both bands better than 15 dB, axial ratios below 1.5 dB, and wide -3 dB beamwidths around 90° and 75° for GPS and 2.4 GHz bands, respectively, thus limiting the gain reduction of the switched-beam system in critical sensor orientations. Special attention has been paid to reduce the coupling between both ports through the optimization of the relative placement of both patches and their feeding points. The measured coupling is below -30 dB.
无人机辅助的无线传感器网络在有毒气体和气溶胶检测中发挥着关键作用。无人机可用于远程部署传感器节点,然后从这些节点收集气体浓度读数和GPS定位信息,以划定受影响区域。为此,需要一个双频段通信系统,支持GPS接收以及传感器读数数据传输,该系统选择使用LoRa物理层在2.4GHz频段进行数据传输。在这项工作中,我们为传感器节点提出了一种切换波束天线子系统,它不仅能够满足双频段要求,还能通过良好的天线极化匹配和提高天线增益来最大化通信范围或降低能耗。该天线子系统采用双端口、双频段、圆极化天线元件构建,其设计和实验验证都进行了详细阐述。采用了一种低剖面微带堆叠结构,使得在两个频段的回波损耗均优于15dB,轴比低于1.5dB,GPS频段和2.4GHz频段的-3dB波束宽度分别约为90°和75°,从而限制了切换波束系统在关键传感器方向上的增益降低。通过优化两个贴片及其馈电点的相对位置,特别注意降低了两个端口之间的耦合。测量得到的耦合低于-30dB。