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A broadband bistable piezoelectric cantilever-based vibration energy harvester with nonlinear high power extraction.

机译:基于宽带双稳态压电悬臂的振动能量采集器,具有非线性大功率提取。

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摘要

This work presents a nonlinear vibration energy harvester, which combines a nonlinear bistable broadband piezoelectric cantilever used to transduce ambient vibration energy, with synchronized capture for efficient harvesting over broadband sources. An accurate model of the bistable transducer, that augments the Butterworth van Dyke piezoelectric model to capture the external magnetic force added as a bias to the external vibrations, is presented. Its validity has been demonstrated through physical implementation and experimental validation against simulation of the mathematical model. For efficient extraction of the transduced energy, nonlinear extraction circuits, namely synchronous charge extraction (SCE) and parallel synchronized switch harvesting on inductor (SSHI), are employed. The switching in these circuits is implemented using a fully self-propelled, low-power electronic breaker circuit, capable of detecting extrema in the waveform to perform switching. Both simulated and experimental power outputs from the bistable harvester have been presented, with the SCE and parallel-SSHI providing average outputs with more than one-hundred (100) fold increase over the harvested power reported in literature for the same input, and further, even more significant gains are observed for broadband excitations.;For the above mentioned harvester, bistability is introduced through the use of two repelling magnets, one mounted on the cantilever tip and the other at a fixed location opposite it. Excitations that can overcome the repulsive magnetic force cause the cantilever to snap between its two equilibrium states, increasing amplitude and velocity of vibration, resulting in higher power outputs. This improved performance is observed whenever the cantilever operates in the bistable mode. Lower-amplitude excitations are unable to overcome the repulsive force, causing the cantilever to vibrate around one of its equilibrium states, and with smaller amplitudes in the presence of the opposing repulsion. To circumvent this issue, the second part of the work presents a completely mechanical way of increasing the range of excitation amplitudes over which the system remains bistable, by spring-loading the previously fixed-positioned magnet, and restricting its motion in the horizontal direction, towards and away from the cantilever. Then, whenever the cantilever moves towards the spring-loaded magnet, the latter is pushed away due to the repulsive force, increasing the distance between the magnets, thereby reducing the repulsive force required to be overcome for bistable operation. The opposite occurs when the cantilever moves away. Thus, the role of spring-loading is to introduce a type of negative feedback, through the self-adjustment of the distance between the magnets, favoring bistable operation over a larger range of excitations, and this is accomplished without an added energy cost. A 90% gain in power output levels over the fixed magnet system was observed.
机译:这项工作提出了一种非线性振动能量收集器,该收集器将用于转换环境振动能量的非线性双稳态宽带压电悬臂与同步捕获相结合,可以在宽带源上进行有效收集。提出了双稳态换能器的准确模型,该模型增强了Butterworth van Dyke压电模型,以捕获作为对外部振动的偏置而添加的外部磁力。通过物理实现和针对数学模型仿真的实验验证,证明了其有效性。为了有效地提取所转换的能量,采用了非线性提取电路,即同步电荷提取(SCE)和电感上的并行同步开关收集(SSHI)。这些电路中的开关是使用完全自我推进的低功率电子断路器电路实现的,该电路能够检测波形的极值以执行开关。已经介绍了双稳态收割机的模拟和实验功率输出,其中SCE和parallel-SSHI提供的平均输出比相同文献中报道的相同输入的收获功率高一百倍(100)倍,而且,对于宽带激励,观察到了更大的收益。对于上述采集器,通过使用两个排斥磁体来引入双稳性,一个磁体安装在悬臂式尖端上,另一个安装在悬臂式尖端的相对位置。可以克服排斥磁力的激励会导致悬臂在其两个平衡状态之间折断,从而增加了振幅和振动速度,从而产生了更高的功率输出。只要悬臂以双稳态模式运行,就会观察到这种改进的性能。较低振幅的激励无法克服排斥力,从而导致悬臂在其平衡状态之一附近振动,并且在存在反向排斥时振幅较小。为了解决这个问题,工作的第二部分提出了一种完全机械的方法,通过弹簧加载先前固定位置的磁体并限制其在水平方向上的运动来增加系统保持双稳态的激励幅度范围,朝向和远离悬臂。然后,每当悬臂移向弹簧加载的磁体时,弹簧就会由于排斥力而被推开,从而增加了磁体之间的距离,从而减小了双稳态运行所需克服的排斥力。当悬臂移开时,情况正好相反。因此,弹簧加载的作用是通过对磁体之间的距离进行自我调节来引入一种负反馈,从而有利于在更大范围的激励下实现双稳态运行,而这无需增加能量成本即可实现。观察到整个固定磁体系统的功率输出水平提高了90%。

著录项

  • 作者

    Singh, Kanishka Aman.;

  • 作者单位

    Iowa State University.;

  • 授予单位 Iowa State University.;
  • 学科 Electrical engineering.;Alternative Energy.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 89 p.
  • 总页数 89
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:52:39

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