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Miniaturized but efficient cantilever beam vibration energy harvesters for wireless bridge health monitoring applications

机译:用于无线桥梁健康监测应用的小型化但高效的悬臂振动能量收割机

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Wireless transmission of sensor node signal at minimum power consumption and on-site charging of batteries is the key to the success of Wireless Structural Health Monitoring (WSHM) technology. In structures like bridges, vibration-based piezoelectric energy harvesters are generally employed to convert the ambient vibrations available in the bridges into usable electrical energy. Achieving a lower resonance frequency in a compact micromachined structure is the main goal of this work. It is attempted by optimizing various parameters, including the choice of piezoelectric material used, harvester structural configuration, and conditioning of the output of the energy harvesting circuitry. The authors propose to maximize the induced stress and therefore harvested power by proposing a sectioned cantilever with gradually decreasing widths. Such a design analyzed using the analytical model developed in this work and industrial standard MEMS design tools show that two section beams employed harvesters induce more power and it is 22.8% higher than the power induced in conventional uniform section cantilever beam harvesters. With three sections it is found that it can be further improved by 42.47%. This significant improvement without compromising miniaturization is the key contribution of this work.
机译:电池最小功耗和现场充电的传感器节点信号的无线传输是无线结构健康监测(WSHM)技术成功的关键。在像桥的结构中,通常采用基于振动的压电能量收割机将桥梁中可用的环境振动转换成可用的电能。在紧凑的微机械结构中实现较低的共振频率是这项工作的主要目标。通过优化各种参数来尝试,包括所用压电材料,收割机结构配置和能量收集电路输出的调节的选择。作者提出了通过提出逐渐降低的宽度逐渐降低的悬臂来最大化诱导的应力并因此收获功率。使用本工作中开发的分析模型和工业标准MEMS设计工具进行了分析的这种设计表明,采用的两个截面梁采用收割机引起更多功率,比传统均匀截面截止梁收割机中的功率高22.8%。有三个部分,发现它可以进一步提高42.47%。在不影响小型化的情况下显着改善是这项工作的关键贡献。

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