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Three-Degree-of-Freedom Hybrid Piezoelectric-Inductive Aeroelastic Energy Harvester Exploiting a Control Surface

机译:三自由度混合压电感应气动弹性能量采集器,可利用控制面

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摘要

Aeroelastic energy harvesting by transforming wind energy into low-power electricity via low-profile and geometrically scalable devices has received growing attention in the literature of energy harvesting for wireless electronic components. The goal is to harvest flow energy available in high-wind areas toward enabling self-powered systems, such as sensor networks employed in structural health and usage monitoring of aircraft and rotorcraft. Other than bluff-body-based energy harvester configurations using vortex-induced vibrations, the use of an aeroelastic typical section with a proper transduction mechanism is a popular and convenient approach to create instabilities and persistent oscillations for flow energy harvesting. In this work, a hybrid three-degree-of-freedom airfoil-based aeroelastic energy harvester that simultaneously uses piezoelectric transduction and electromagnetic induction is analyzed based on fully coupled electroaeroelastic modeling. This particular configuration exploits a control surface for enhanced design flexibility as compared to its well-explored two-degree-of-freedom counterparts. The two transduction mechanisms are added to the plunge degree of freedom in the presence of two separate electrical loads, and dimensionless electroaeroelastic equations are obtained. The effects of aeroelastic parameters and load resistance values on the overall electroaeroelastic behavior (total power generation and linear flutter speed) are discussed in detail.
机译:通过薄型且几何可扩展的设备将风能转换为低功率电能的气动弹性能量收集在无线电子组件能量收集的文献中越来越受到关注。目标是收集高风地区可用的流动能,以实现自供电系统,例如用于飞机和旋翼飞机的结构健康和使用情况监视的传感器网络。除了使用涡流引起的振动的基于虚张声势的能量收集器配置之外,使用具有适当转换机制的气动弹性典型截面是一种流行且方便的方法,可为流动能量收集创建不稳定性和持续振荡。在这项工作中,基于完全耦合的电气动弹性模型,分析了同时使用压电换能和电磁感应的混合型三自由度翼型气动弹性能量采集器。与经过充分研究的两自由度对应物相比,这种特殊的结构利用了控制面来提高设计灵活性。在存在两个单独的电负载的情况下,将两种换能机制添加到插入自由度中,从而获得了无量纲的电气动弹性方程。详细讨论了气动弹性参数和负载电阻值对整体电动气动弹性行为(总发电量和线性振颤速度)的影响。

著录项

  • 来源
    《AIAA Journal》 |2015年第2期|394-404|共11页
  • 作者单位

    University of Sao Paulo, 13566-590 Sao Carlos, Brazil;

    University of Sao Paulo, 13566-590 Sao Carlos, Brazil;

    Georgia Institute of Technology, Atlanta, Georgia 30332-0405;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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