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Self-powered sensing in structural health and usage monitoring.

机译:结构健康和使用情况监控中的自供电传感。

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摘要

Fatigue and overload of mechanical, civil and aerospace structures remains a major problem that can lead to costly repair and catastrophic failure. Long term monitoring of mechanical loading for these structures could reduce maintenance cost, improve longevity and enhance safety. However, the powering of these sensors throughout the lifetime of the monitored structure remains a major problem.;The ability to convert ambient energy into electric power would eliminate the problem of drained electrical supply, and would allow indefinite monitoring. This work first answers the key question: can sufficient electrical energy be produced from typical structural motions? Realistic earthquake, wind and traffic loads are used to calculate the theoretical maximum energy levels that can be extracted from these dynamic events. The same dynamic loads are used to calculate and experimentally measure the electrical energy produced by a realistic piezoelectric generator.;The collected energy levels are compared to the energy requirements of various electronic subsystems in a wireless sensor. For a 5 cm3 sensor node (the volume of a typical concrete stone), it is found that only extreme events such as earthquakes can provide sufficient energy to power currently available wireless sensors. For most typical dynamic events, it would be impossible to harvest enough energy to power a 5 cm3 wireless sensor. The results show that achieving continuous, self-powered, monitoring will require the development of a sensor node that can operate within a power budget of 1 microW.;The implementation of a novel self-powered fatigue monitoring sensor is presented. The sensor is based on the integration of piezoelectric transduction with floating gate avalanche injection. The miniaturized sensor enables self-powered, continuous monitoring and time-to-failure predictions of mechanical and civil structures. The sensor exploits a log-linear response of a current starved hot-electron injection process on a floating-gate transistor biased in the weak-inversion region. The measured response is shown to be minimally invariant to device mismatch and temperature fluctuations. By configuring an array of floating-gate transistors to respond to different amplitude levels of the input signal, the proposed circuit implements a level counting algorithm which is widely used in many usage monitoring techniques. Measured results from a fabricated integrated circuit in a 0.5-microm CMOS process demonstrate that the prototype can sense, store and compute over 107 loading cycles. The power dissipation of the prototype is measured to be 800nW which makes it ideal for autonomous long-term operation. The prototype is interfaced with different piezoelectric transducers and is tested in the laboratory to demonstrate its applicability for real-time usage monitoring.
机译:机械,民用和航空航天结构的疲劳和过载仍然是一个主要问题,可能导致昂贵的维修和灾难性故障。对这些结构的机械负载进行长期监控可以降低维护成本,提高使用寿命并提高安全性。然而,在被监视结构的整个生命周期中,这些传感器的供电仍然是一个主要问题。将环境能量转换为电能的能力将消除耗电的问题,并可以进行无限期的监视。这项工作首先回答了关键问题:典型的结构运动能否产生足够的电能?现实的地震,风和交通负荷用于计算可从这些动态事件中提取的理论最大能量水平。使用相同的动态负载来计算和实验测量实际压电发电机产生的电能。将收集的能级与无线传感器中各种电子子系统的能级进行比较。对于一个5 cm3的传感器节点(典型的混凝土石头的体积),发现只有地震等极端事件才能提供足够的能量来为当前可用的无线传感器供电。对于大多数典型的动态事件,将不可能收集到足够的能量来为5 cm3的无线传感器供电。结果表明,要实现连续的自供电监测,需要开发一种传感器节点,该节点可以在1微瓦的功率预算内运行。提出了一种新型自供电疲劳监测传感器的实现。该传感器基于压电换能与浮栅雪崩注入的集成。微型传感器可对机械和土木结构进行自供电,连续监控和故障时间预测。该传感器利用在弱反相区域中偏置的浮栅晶体管上电流不足的热电子注入过程的对数线性响应。结果表明,所测得的响应对设备失配和温度波动的影响最小。通过配置浮栅晶体管阵列以响应输入信号的不同幅度电平,所提出的电路实现了一种电平计数算法,该算法广泛用于许多使用情况监视技术中。在0.5微米CMOS工艺中,由制造的集成电路测得的结果表明,该原型可以感应,存储和计算超过107个加载周期。原型的功耗测量为800nW,非常适合自主长期运行。该原型与不同的压电换能器接口,并在实验室进行了测试,以证明其在实时使用情况监控中的适用性。

著录项

  • 作者

    Lajnef, Nizar.;

  • 作者单位

    Michigan State University.;

  • 授予单位 Michigan State University.;
  • 学科 Engineering Civil.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 133 p.
  • 总页数 133
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 建筑科学;
  • 关键词

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