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Passive Wireless Sensing Devices for Structural Health Monitoring

机译:用于结构健康监控的被动无线传感装置

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Large scale sensor deployments for structural health monitoring (SHM) based on existing NDE equipment are limited in their application due to the challenges associated with the power supply and data acquisition. This paper presents the development of a passive sensor node and remote reader unit which aim to address these limitations and bridge the gap between traditional non-destructive evaluation (NDE) and SHM. Power is delivered to sensor nodes using an ultra-high frequency (UHF) radio link and communication is achieved using a backscatter modulation mechanism, removing any requirement for a resident power source. Results indicate that the device can be energised and interrogated from ranges exceeding 20m. The passive transponder may include ultra-low power electromagnetic, magnetic or acoustic sensing payloads within the same general acquisition and communication platform. This versatility allows for a wider range of potential applications or more diverse information about a structure. The sensor platform is based around a single low cost, micro-power microcontroller with integrated analogue to digital converter (ADC). An electromagnetic sensor payload has been developed which can perform a pulsed eddy current (PEC) measurement. The coil transient can be sampled, check-summed and digitally transmitted along with position and temperature information for an energy budget of <15μJ. Furthermore, an acoustic normal beam inspection payload has been developed which can monitor wall thickness and detect sub-surface defects within the same energy budget.
机译:基于现有NDE设备的结构健康监测(SHM)的大规模传感器部署在其应用中受到限制,由于与电源和数据采集相关的挑战。本文介绍了无源传感器节点和远程读取器单元的开发,旨在解决这些限制并弥合传统的非破坏性评估(NDE)和SHM之间的差距。电源通过超高频(UHF)无线电链路传送到传感器节点,使用反向散射调制机制实现通信,从而消除驻留电源的任何要求。结果表明该装置可以从超过20m的范围通电并询问。被动应答器可以包括在相同的一般采集和通信平台内的超低功率电磁,磁或声学感测有效载荷。这种多功能性允许更广泛的潜在应用或有关结构的多样化信息。传感器平台基于单个低成本,微电源微控制器,具有集成模拟到数字转换器(ADC)。已经开发了电磁传感器有效载荷,其可以执行脉冲涡流(PEC)测量。可以采样线圈瞬变,以及与<15μJ的能量预算的位置和温度信息一起进行采样,检查和数字传输。此外,已经开发了声学正常光束检查有效载荷,其可以监测壁厚并检测相同能量预算内的子表面缺陷。

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