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Energy harvesting of radio frequency and vibration energy to enable wireless sensor monitoring of civil infrastructure

机译:收集无线电频率和振动能量,以实现对民用基础设施的无线传感器监控

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To power distributed wireless sensor networks on bridges, traditional power cables or battery replacement are excessively expensive or infeasible. This project develops two power harvesting technologies. First, a novel parametric frequency-increased generator (PFIG) is developed. The fabricated PFIG harvests the non-periodic and unprecedentedly low frequency (DC to 30 Hz) and low acceleration (0.55-9.8 m/s2) mechanical energy available on bridges with an average power > 2 uW. Prototype power conversion and storage electronics were designed and the harvester system was used to charge a capacitor from arbitrary bridge-like vibrations. Second, an RF scavenger operating at medium and shortwave frequencies has been designed and tested. Power scavenging at MHz frequencies allows for lower antenna directivities, reducing sensitivity to antenna positioning. Furthermore, ambient RF signals at these frequencies have higher power levels away from cities and residential areas compared to the UHF and SHF bands utilized for cellular communication systems. An RF power scavenger operating at 1 MHz along with power management and storage circuitry has been demonstrated. It powers a LED at a distance of 10 km from AM radio stations.
机译:为了给桥上的分布式无线传感器网络供电,传统的电源电缆或电池更换过于昂贵或不可行。该项目开发了两种功率收集技术。首先,开发了一种新型的参量频率增加发生器(PFIG)。所制造的PFIG收集平均功率> 2 uW的非周期性,前所未有的低频(DC至30 Hz)和低加速度(0.55-9.8 m / s2)的机械能。设计了原型功率转换和存储电子设备,并使用收集器系统对任意桥状振动进行电容器充电。其次,已经设计并测试了在中短波频率下工作的RF清道夫。以MHz频率进行功率清除可降低天线方向性,从而降低对天线定位的灵敏度。此外,与用于蜂窝通信系统的UHF和SHF频段相比,这些频率的环境RF信号具有远离城市和居民区的更高功率电平。已经演示了工作在1 MHz的RF功率清除器以及功率管理和存储电路。它为距AM广播电台10公里的LED供电。

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