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Synchronized switch harvesting applied to self-powered smart systems: Piezoactive microgenerators for autonomous wireless receivers

机译:应用于自供电智能系统的同步开关采集:用于自主无线接收器的压电微型发电机

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This paper introduces the conceptual architecture of a fully integrated, truly self-powered structural health monitoring (SHM) scheme. The challenge here is to power an array of numerous distributed actuators and sensors as well as wireless data transmission modules without recurring to heavy and costly wiring. Based on microgenerators which directly convert ambient mechanical energy into electrical energy using, the synchronized switch harvesting (SSH) method, the proposed solution allows avoiding the periodic replacement of reloading of batteries. This addresses environmental and economic issues at the same time, knowing that such elements are heavy, polluting and might be installed in rather inaccessible locations. Indeed, especially in airborne structures saving weight and maintenance cost is of priority importance. Previous work showed that such microgenerators provide a stand-alone power source whose performances meet the requirements of autonomous wireless transmitters (AWTs) that comprise an acoustic Lamb wave 's actuator and a radio frequency (RF) emitter (D. Guyomar, Y. Jayet, L. Petit, E. Lefeuvre, T. Monnier, C. Richard, M. Lallart, Synchronized switch harvesting applied to self-powered smart systems: Piezoactive microgenerators for autonomous wireless transmitters, Sens Actuators A: Phys. 138 (1) (2007) 151-160, doi: 10.1016/j.sna.2007.04.009). Following this work, the present contribution presents a further step towards the integration of the SHM technique. It shows the ability of our microgenerators to provide enough energy to give logical autonomy to each self-powered sensing node, named autonomous wireless receiver (AWR), and thus to provide some local (decentralized) pre-processing ability to the SHM system. A preliminary design of the device using off-the-shelf electronics and surface mounted piezoelectric patches will be presented. Since the existence of a positive energy balance between the harvesting capabilities of the SSH technique and the energy requirements of the proposed device will be proved the system, formed by the combination of the AWR with the previously developed AWT, is a proof of concept of truly self-powered smart systems for damage detection in simple structures, setting apart application-specific optimization or miniaturization concerns that will be addressed in future works. (c) 2008 Elsevier B.V. All rights reserved.
机译:本文介绍了一种完全集成的,真正自供电的结构健康监测(SHM)方案的概念体系结构。这里的挑战是为众多分布式执行器和传感器以及无线数据传输模块的阵列供电,而又不会导致笨重且昂贵的布线。基于使用同步开关收集(SSH)方法将环境机械能直接转换为电能的微型发电机,所提出的解决方案可以避免定期更换电池来进行更换。这同时解决了环境和经济问题,因为知道这些元素很重,很污染并且可能安装在难以接近的位置。确实,尤其是在空运结构中,减轻重量和维护成本是重中之重。先前的工作表明,这种微型发电机可提供独立的电源,其性能可满足自主无线发射机(AWT)的要求,该发射机包括兰姆波声致动器和射频(RF)发射器(D. Guyomar,Y. Jayet ,L。Petit,E。Lefeuvre,T。Monnier,C。Richard,M。Lallart,应用于自供电智能系统的同步开关收集:用于自主无线发射机的压电式微型发电机,Sens执行器A:物理138(1)( 2007)151-160,doi:10.1016 / j.sna.2007.04.009)。继这项工作之后,本文稿为向SHM技术的集成迈出了又一步。它显示了我们的微型发电机提供足够能量以赋予每个自供电传感节点逻辑自主权的能力,这些自主节点被称为自主无线接收器(AWR),从而为SHM系统提供了一些本地(分散式)预处理能力。将介绍使用现成的电子设备和表面安装的压电贴片对设备进行的初步设计。由于将证明SSH技术的收集能力与拟议设备的能量需求之间存在正能量平衡,因此由AWR与先前开发的AWT相结合而形成的系统是真实概念的证明。自供电的智能系统,用于以简单的结构进行损坏检测,并设置了针对特定应用的优化或小型化问题,这些问题将在以后的工作中解决。 (c)2008 Elsevier B.V.保留所有权利。

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