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Ultrasonic wireless health monitoring

机译:超声波无线健康监测

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The integration of autonomous wireless elements in health monitoring network increases the reliability by suppressing power supplies and data transmission wiring. Micro-power piezoelectric generators are an attractive alternative to primary batteries which are limited by a finite amount of energy, a limited capacity retention and a short shelf life (few years). Our goal is to implement such an energy harvesting system for powering a single AWT (Autonomous Wireless Transmitter) using our SSH (Synchronized Switch Harvesting) method. Based on a non linear process of the piezoelement voltage, this SSH method optimizes the energy extraction from the mechanical vibrations. This AWT has two main functions : The generation of an identifier code by RF transmission to the central receiver and the Lamb wave generation for the health monitoring of the host structure. A damage index is derived from the variation between the transmitted wave spectrum and a reference spectrum. The same piezoelements are used for the energy harvesting function and the Lamb wave generation, thus reducing mass and cost. A micro-controller drives the energy balance and synchronizes the functions. Such an autonomous transmitter has been evaluated on a 300x50x2 mm~3 composite cantilever beam. Four 33x11x0.3 mm~3 piezoelements are used for the energy harvesting and for the wave lamb generation. A piezoelectric sensor is placed at the free end of the beam to track the transmitted Lamb wave. In this configuration, the needed energy for the RF emission is 0.1 mJ for a 1 byte-information and the Lamb wave emission requires less than 0.1 mJ. The AWT can harvested an energy quantity of approximately 20 mJ (for a 1.5 Mpa lateral stress) with a 470 μF storage capacitor. This corresponds to a power density near to 6mW/cm~3. The experimental AWT energy abilities are presented and the damage detection process is discussed. Finally, some envisaged solutions are introduced for the implementation of the required data processing into an autonomous wireless receiver, in terms of reduction of the energy and memory costs.
机译:健康监测网络中自主无线元件的集成通过抑制电源和数据传输布线来提高可靠性。微功率压电发电机是原电池的一种有吸引力的替代产品,原电池受到有限的能量,有限的容量保持能力和较短的保质期(几年)的限制。我们的目标是使用我们的SSH(同步开关收集)方法来实现为单个AWT(自主无线发送器)供电的能量收集系统。基于压电电压的非线性过程,此SSH方法优化了从机械振动中提取能量的方法。该AWT具有两个主要功能:通过RF传输到中央接收器生成标识符代码,以及生成Lamb wave以监视主机结构的健康状况。损伤指数是从透射波谱和参考谱之间的变化得出的。相同的压电元件用于能量收集功能和生成兰姆波,从而降低了质量和成本。微控制器驱动能量平衡并同步功能。这种自主发射器已经在300x50x2 mm〜3复合悬臂梁上进行了评估。四个33x11x0.3 mm〜3压电元件用于能量收集和波浪羔羊生成。压电传感器放置在光束的自由端,以跟踪透射的兰姆波。在此配置中,对于1字节信息,RF发射所需的能量为0.1 mJ,而Lamb波发射所需的能量小于0.1 mJ。 AWT可以通过470μF的存储电容器收获大约20 mJ的能量(对于1.5 Mpa的横向应力)。这对应于接近6mW / cm〜3的功率密度。提出了实验性的AWT能量能力,并讨论了损伤检测过程。最后,就减少能源和存储成本而言,引入了一些设想的解决方案,用于将所需的数据处理实现到自主无线接收器中。

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