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Design Implementation and Measurement Procedure of Underwater and Water Surface Antenna for LoRa Communication

机译:用于Lora通信水下和水面天线的设计实施和测量程序

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摘要

There is an increasing interest in water bodies, which make up more that seventy percent of our planet. It is thus imperative that the water environment should be remotely monitored. Radio frequency (RF) signals have higher bandwidth and lower latency compared to acoustic signals. However, water has high permittivity and conductivity which presents a challenge for the implementation of RF technology. In this work, we undertook a novel design, fabrication, measurement and implementation of an antenna for a sensor node with dual ability of underwater and water surface long range (LoRa) communication at 868 MHz. It was observed that the antenna’s performance deteriorated underwater without −10 dB effective bandwidth between 668 MHz and 1068 MHz. The introduction of an oil-impregnated paper buffer around the antenna resulted in an effective 400 MHz bandwidth within the same frequency span. The sensor node with the buffered antenna was able to achieve a distance of 6 m underwater and 160 m over water surface communication to a data gateway node. The sensor node without the buffered antenna was only able to achieve 80 m over water surface communication. These experimental results show the feasibility of using the LoRa 868 MHz frequency in underwater and water surface communication.
机译:对水体的兴趣越来越令人兴趣,这弥补了我们星球的百分之百分百。因此,必须远程监测水环境。与声信号相比,射频(RF)信号具有更高的带宽和更低的延迟。然而,水具有高介电常数和电导率,这对RF技术的实施具有挑战。在这项工作中,我们对传感器节点进行了一种新颖的设计,制造,测量和实施,该天线具有在868 MHz的水下和水表面长度(LORA)通信的双水下和水表面通信的能力。观察到天线的性能在水下劣化而没有-10 dB的有效带宽在668MHz和1068MHz之间。在天线周围引入油浸纸缓冲器导致在相同频率跨度内有效的400MHz带宽。具有缓冲天线的传感器节点能够实现与数据网关节点的水下水下和160米的距离。没有缓冲天线的传感器节点仅能够通过水面通信实现80米。这些实验结果表明,在水下和水面通信中使用LORA 868 MHz频率的可行性。

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