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A low cost and high efficient acoustic modem for underwater sensor networks

机译:用于水下传感器网络的低成本高效声学调制解调器

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Underwater wireless sensor Networks (UWSN) will provide a variety of attractive working fields such as aquaculture, offshore exploitation, biological monitoring as well as water and seafloor pollution, seismic activity and ocean currents. A practical implementation of these applications will require spreading an important number of nodes to facilitate underwater monitoring by means of data acquiring, so it becomes a challenge to develop simple and reliable modem architectures to reduce both the cost in components and the developing time, still being efficient and robust. Moreover power consumption must be also considered due to energy harvesting difficulties in an underwater environment. This work is focused in the design and implementation of a low cost and energy efficient underwater modem. The paper presents a new acoustic modem design based on an original signal-conditioning model optimally adapted to commercial echo sounder based piezoelectric transducers. It represents a very low-cost solution with a power consumption level similar to current terrestrial wireless sensor networks. The modulation and demodulation algorithms are essential to define the modem architecture. In this work, they have been adapted to a low power microcontroller processing capabilities. The proposed modem architecture includes an 8-bit microcontroller and few external analog components. A binary Coherent-FSK modulation has been chosen because it is more efficient in terms of bandwidth than a non-coherent FSK. Coherent FSK modulation algorithm is quite simple, and can be easily implemented in an 8-bit microcontroller with negligible execution time. Demodulation algorithm is more complex and needs a low-power solution. The paper investigates different alternatives, obtaining a new optimal solution including an additional specific processing unit to the microprocessor core. Compared with previous researches that used microcontrollers, the presented approach also improves energy efficiency --without lowering bit rate and bandwidth efficiency. The design has a variable gain reception to measure precisely the incoming signal level and obtaining signal quality indicators similar to RSSI used in wireless RF sensor networks. The circuit has been simulated and experimentally tested too with a prototype. Several tests have been carried out using the different alternatives presented. The goal of the first experiments was to characterize the frequency response of the transducers, and validate acoustic wave generation and amplification models obtained by means of simulation. Measurements were also taken to obtain receiver sensitivity and communication efficiency to power variations. Efficient design of both power amplifier and receiver analog processing stages, combined with optimal microcontroller power saving modes has extended estimated battery. As a conclusion, a worthwhile modem has been designed with the following advantages: Ultra-Low power consumption, a small form factor and a low final cost which enable future low cost deployment of underwater sensor networks.
机译:水下无线传感器网络(UWSN)将提供各种有吸引力的工作领域,例如水产养殖,近海开采,生物监测以及水和海底污染,地震活动和洋流。这些应用程序的实际实现将需要扩展大量节点以通过数据获取来促进水下监视,因此,开发简单而可靠的调制解调器架构以降低组件成本和开发时间成为一项挑战。高效而强大。此外,由于在水下环境中的能量收集困难,还必须考虑功耗。这项工作集中在低成本和高能效的水下调制解调器的设计和实现上。本文提出了一种基于原始信号调理模型的新型声学调制解调器设计,该模型最适合于基于商业回声测深仪的压电换能器。它代表了一种非常低成本的解决方案,其功耗水平类似于当前的地面无线传感器网络。调制和解调算法对于定义调制解调器架构至关重要。在这项工作中,它们已经适应了低功耗微控制器的处理能力。拟议的调制解调器体系结构包括一个8位微控制器和少量外部模拟组件。选择了二进制相干-FSK调制,因为它在带宽方面比非相干FSK更有效。相干FSK调制算法非常简单,并且可以在执行时间可忽略的8位微控制器中轻松实现。解调算法更加复杂,需要低功耗解决方案。本文研究了不同的替代方案,从而获得了新的最佳解决方案,其中包括微处理器核心的额外特定处理单元。与以前使用微控制器的研究相比,该方法还提高了能效- -- 而不降低比特率和带宽效率。该设计具有可变增益接收,可精确测量输入信号电平并获得类似于无线RF传感器网络中使用的RSSI的信号质量指标。该电路也已通过原型进行了仿真和实验测试。使用给出的不同替代方案已经进行了几次测试。第一个实验的目的是表征换能器的频率响应,并验证通过仿真获得的声波生成和放大模型。还进行了测量以获得接收机灵敏度和通信效率对功率变化的影响。功率放大器和接收器模拟处理阶段的高效设计,结合最佳的微控制器省电模式,已扩展了估计的电池。结论是,设计了一种有价值的调制解调器,它具有以下优点:超低功耗,小尺寸和低最终成本,这使得将来可以低成本部署水下传感器网络。

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