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首页> 外文期刊>Sensors Journal, IEEE >Precise, Energy-Efficient Data Acquisition Architecture for Monitoring Radioactivity Using Self-Sustainable Wireless Sensor Nodes
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Precise, Energy-Efficient Data Acquisition Architecture for Monitoring Radioactivity Using Self-Sustainable Wireless Sensor Nodes

机译:精确,节能的数据采集架构,用于使用自持式无线传感器节点监控放射性

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Measuring radiation dosage rates is becoming more and more important in many applications scenarios. Continuously monitoring radiation in contaminated and poorly accessible areas is challenging due to the frequent data collection/transmission combined with long life requirements. We present a self-sustainable wireless sensor node for low power, high precision radiation dosage rate monitoring. We propose an energy-efficient data acquisition algorithm that can reduce the energy per measurement, while guaranteeing minimal loss of precision. The proposed node is designed to work in collaboration with an unmanned aerial vehicle used for two essential mission steps: air-deployment of the wireless sensor nodes at suitable locations, and acquiring data logs via low-power, shortrange radio communication in fly-by mode after a wake-up command. The system uses off-the-shelf components for defining the mission, drop-zone, and trajectory, for compressing data and managing communication. The node is equipped with a novel low-power nuclear radiation sensor, and has been designed and implemented with self-sustainability in mind as it will be deployed in hazardous, inaccessible areas. To this end, the proposed node uses a combination of complementary techniques: a low-power microcontroller with non-volatile memory, energy harvesting, adaptive power management, and a nano-watt wake-up radio. Experimental results demonstrate the precision and the low energy consumption of the radiation sensor, the energy efficiency of the whole solution, and the acquisition algorithms. The node consumes only 31μW in sleep mode and 1.7mW in active mode, and has the capability to achieve perpetual monitoring once deployed.
机译:在许多应用场景中,测量辐射剂量率变得越来越重要。由于频繁的数据收集/传输以及长寿命的要求,在受污染和难以接近的区域连续监测辐射是一项挑战。我们提出了一种用于低功耗,高精度辐射剂量率监测的可自我维持的无线传感器节点。我们提出了一种节能数据采集算法,该算法可以减少每次测量的能量,同时保证最小的精度损失。拟议中的节点旨在与用于两个基本任务步骤的无人飞行器协同工作:在适当位置进行无线传感器节点的空中部署,并以飞越模式通过低功率,短距离无线电通信获取数据日志唤醒命令后。该系统使用现成的组件来定义任务,降落区域和轨迹,以压缩数据并管理通信。该节点配备了新型的低功率核辐射传感器,并且在设计和实现时会考虑到自身的可持续性,因为它将部署在危险,难以接近的区域。为此,提出的节点使用了互补技术的组合:具有非易失性存储器的低功率微控制器,能量收集,自适应功率管理和纳瓦唤醒无线电。实验结果证明了辐射传感器的精度和低能耗,整个解决方案的能效以及采集算法。该节点在睡眠模式下仅消耗31μW,在活动模式下仅消耗1.7mW,并且一旦部署便能够实现永久监控。

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