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A Wireless Condition Monitoring System Powered by a Sub-100 $mu$W Vibration Energy Harvester

机译:由Sub-100 $ mu $ W振动能量采集器提供动力的无线状态监测系统

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A wireless sensor network for condition monitoring and its corresponding sensor node powered by a vibration energy harvester producing about 100 $mu$W are presented. The sensor network utilizes an asynchronous beacon-detection based duty cycle control architecture to reduce power consumption and support ID-based TDMA while avoiding the need for timing synchronization between nodes. It also provides FDMA and fixed-time slot TDMA for further network flexibility. The sensor node transceiver includes a duty-cycle timing control unit to minimize power consumption; an LO-less, TDMA-capable, addressable beacon receiver; an FDMA-capable transmitter; and a low-power, universal sensor interface. The proposed sensor node, implemented in 0.13- $mu$m CMOS technology, achieves low power consumption and a high degree of flexibility without requiring calibration or the use of BAW or SAW filters. The sensor node is experimentally demonstrated to operate autonomously from the power provided by a piezoelectric vibration energy harvester with dimensions of 27$,times,$ 23$,times,$ 6.5 mm$^3$ excited by 4.5-m/s$^2$ acceleration at 40.8 Hz. The WSN condition monitoring behavior is measured with a capacitive temperature sensor, and achieves an effective temperature resolution of 0.36$^{circ}$ C.
机译:提出了一种用于状态监测的无线传感器网络及其相应的传感器节点,该节点由振动能量采集器供电,产生的能量约为100μW。传感器网络利用基于异步信标检测的占空比控制架构来降低功耗,并支持基于ID的TDMA,同时避免了节点之间的时序同步。它还提供FDMA和固定时隙TDMA,以进一步提高网络灵活性。传感器节点收发器包括占空比定时控制单元,以最大程度地降低功耗。无LO,具有TDMA功能的可寻址信标接收器;具有FDMA功能的发射机;和低功耗通用传感器接口。拟议中的传感器节点采用0.13-μmCMOS技术实现,无需校准或使用BAW或SAW滤波器即可实现低功耗和高度灵活性。实验证明该传感器节点可以从压电振动能量采集器提供的能量中自主运行,其尺寸为27美元,23美元,6.5毫米,3毫米,被4.5-m / s / 2激发$ 40.8 Hz时的加速度。使用电容式温度传感器测量WSN状态监视行为,并实现0.36°C的有效温度分辨率。

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