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Efficient time synchronization for structural health monitoring using wireless smart sensor networks

机译:使用无线智能传感器网络进行结构健康监控的有效时间同步

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Wireless smart sensor networks (WSSNs) have shown great promise in structural health monitoring (SHM), because of their advantages of low cost, higher flexibility, robust data management, and ability to provide better understanding of structural behavior through dense deployment of sensors. However, implementation of wireless SHM systems poses many challenges, one of which is ensuring adequate synchronization of the collected data. This issue arises in WSSNs because each smart sensor in the network having an independent processor with its own local clock, and this clock is not necessarily synchronized with the clocks of other sensors. Moreover, even though the clocks can be accurately synchronized by exchanging time information through beacon messages, the measured data may still be poorly synchronized because of random delays from both software and hardware sources; that is, synchronized clocks do not necessarily yield synchronized sensing. Various algorithms have been proposed to achieve both synchronized clocks and sensing. However, these protocols still lack the desired performance for SHM applications for reasons of extended data collection time, temperature variations resulting in nonlinear clock drift, requirement for prompt response, and so on. In this paper, the unique features and challenges of synchronized sensing for SHM applications are discussed, followed by a numerical investigation of the effect of nonlinear clock drift on data synchronization accuracy. A new synchronized sensing strategy considering nonlinear clock drift compensation is proposed with two different implementations to meet various application requirements. Experimental results show that the proposed time synchronization approach can compensate for temperature effects on clock drift and provide efficient and accurately synchronized sensing (<50 µs maximum error) for SHM, even for long sensing duration. Copyright © 2015 John Wiley & Sons, Ltd.
机译:无线智能传感器网络(WSSN)具有低成本,更高的灵活性,强大的数据管理以及通过密集部署传感器提供对结构行为的更好理解的能力,因此在结构健康监测(SHM)中显示出了广阔的前景。但是,无线SHM系统的实现带来了许多挑战,其中之一就是确保所收集数据的充分同步。在WSSN中会出现此问题,因为网络中的每个智能传感器都具有带有其自己的本地时钟的独立处理器,并且此时钟不一定与其他传感器的时钟同步。此外,即使可以通过信标消息交换时间信息来精确地同步时钟,但由于来自软件和硬件源的随机延迟,所测得的数据仍然可能同步性很差。即,同步时钟不一定产生同步感测。已经提出了各种算法来实现同步时钟和感测。但是,由于延长了数据收集时间,导致非线性时钟漂移的温度变化,需要快速响应等原因,这些协议仍缺乏SHM应用所需的性能。本文讨论了SHM应用中同步传感的独特功能和面临的挑战,然后对非线性时钟漂移对数据同步精度的影响进行了数值研究。提出了一种考虑非线性时钟漂移补偿的新型同步感应策略,该策略采用两种不同的实现方式来满足各种应用需求。实验结果表明,所提出的时间同步方法可以补偿温度对时钟漂移的影响,即使在较长的感测持续时间内,也可以为SHM提供高效且准确的同步感测(最大误差<50µss)。版权所有©2015 John Wiley&Sons,Ltd.

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