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首页> 外文期刊>Ultrasonics, Ferroelectrics and Frequency Control, IEEE Transactions on >Vibration energy harvesting based on integrated piezoelectric components operating in different modes
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Vibration energy harvesting based on integrated piezoelectric components operating in different modes

机译:基于以不同模式运行的集成压电组件的振动能量收集

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To increase the vibration energy-harvesting capability of the piezoelectric generator based on a cantilever beam, we have proposed a piezoelectric generator that not only uses the strain change of piezoelectric components bonded on a cantilever beam, but also employs the weights at the tip of the cantilever beam to hit piezoelectric components located on the 2 sides of weights. A prototype of the piezoelectric generator has been fabricated and its characteristics have been measured and analyzed. The experimental results show that the piezoelectric components operating in the hit mode can substantially enhance the energy harvesting of the piezoelectric generator on a cantilever beam. Two methods are used and compared in the management of rectified output voltages from different groups of piezoelectric components. In one of them, the DC voltages from rectifiers are connected in series, and then the total DC voltage is applied to a capacitor. In another connection, the DC voltage from each group is applied to different capacitors. It is found that 22.3% of the harvested energy is wasted due to the series connection. The total output electric energy of our piezoelectric generator at nonresonance could be up to 43 nJ for one vibration excitation applied by spring, with initial vibration amplitude (0-p) of 18 mm and frequency of 18.5 Hz, when the rectified voltages from different groups of piezoelectric components are connected to their individual capacitors. In addition, the motion and impact of the weights at the tip of the cantilever beam are theoretically analyzed, which well explains the experimental phenomena and suggests the measures to improve the generator.
机译:为了提高基于悬臂梁的压电发生器的振动能量收集能力,我们提出了一种压电发生器,该压电发生器不仅利用结合在悬臂梁上的压电组件的应变变化,而且还利用了悬臂梁尖端的重量。悬臂梁撞击位于砝码两侧的压电元件。压电发电机的原型已经制造出来,其特性已得到测量和分析。实验结果表明,以击中模式运行的压电组件可以大大增强悬臂梁上压电发生器的能量收集。在管理来自不同压电元件组的整流输出电压时,使用了两种方法并进行了比较。在其中之一中,来自整流器的直流电压串联连接,然后将总的直流电压施加到电容器。在另一种连接方式中,每组的直流电压都施加到不同的电容器上。可以发现,由于串联,浪费了22.3%的能量。当来自不同组的整流电压通过弹簧施加一次振动时,我们的压电发电机在非共振状态下的总输出电能可能高达43 nJ,初始振动幅度(0-p)为18 mm,频率为18.5 Hz的压电元件连接到它们各自的电容器。此外,从理论上分析了悬臂梁末端的重物的运动和冲击,从而很好地解释了实验现象并提出了改进发电机的措施。

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