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首页> 外文期刊>Journal of Micromechanics and Microengineering >Improvements in energy harvesting capabilities by using different shapes of piezoelectric bimorphs
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Improvements in energy harvesting capabilities by using different shapes of piezoelectric bimorphs

机译:通过使用不同形状的压电双压电晶片提高能量收集能力

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摘要

The small amount of power needed by microelectronic devices opens up the possibility to convert part of the vibration energy present in the environment into electrical energy, using several methods. One such method is to use piezoelectric material as an additional layer in cantilever beams to harvest vibration energy for self-powered sensors. The geometry of a piezoelectric cantilever beam will greatly affect its vibration energy harvesting ability. Tapering and changing the configuration as ways to increase the generated output power of cantilever piezoelectric energy harvesters have gained popularity in recent years. In this work vibration energy harvesting via piezoelectric resonant bimorph cantilevers is studied and new designs for obtaining optimal piezoelectric energy harvesters are suggested. This paper deduces a very precise and simple analytical formula that can be used as a rule of thumb for calculating the resonant frequency of bimorph trapezoidal V-shaped cantilevers using the Rayleigh-Ritz method. This analytical formula is then analyzed using MATLAB as well as finite element methods and validated by ABAQUS simulation. Also, mathematical derivations for the output voltage of bimorph piezoelectric energy harvesters are presented and validated by simulation and experimental results. These formulas provide a new perspective that, among all the bimorph trapezoidal V-shaped cantilever beams with uniform thickness, the bimorph triangular tapered cantilever can lead to the highest resonant frequency and therefore maximum sensitivity, and by increasing the ratio of the trapezoidal bases the sensitivity decreases. Also, the output voltage and strain distribution show that the triangular cantilever has the highest efficiency and power density.
机译:微电子设备所需的少量功率开辟了使用几种方法将环境中存在的部分振动能转换为电能的可能性。一种这样的方法是将压电材料用作悬臂梁中的附加层,以收集用于自供电传感器的振动能量。压电悬臂梁的几何形状将极大地影响其振动能量收集能力。近年来,逐渐减小和改变配置作为增加悬臂式压电能量收集器的产生的输出功率的方式已变得普及。在这项工作中,研究了通过压电谐振双压电晶片悬臂收集振动能量,并提出了获得最佳压电能量收集器的新设计。本文推导了一个非常精确和简单的解析公式,该公式可作为经验法则,使用瑞利-里兹方法计算双压电晶片梯形V形悬臂的共振频率。然后,使用MATLAB和有限元方法分析此解析公式,并通过ABAQUS仿真进行验证。此外,给出了双压电晶片压电能量采集器输出电压的数学推导,并通过仿真和实验结果进行了验证。这些公式提供了一个新的观点,即在所有厚度均匀的双压电晶片梯形V形悬臂梁中,双压电晶片三角形锥形悬臂梁可以导致最高的共振频率,从而获得最大的灵敏度,并通过增加梯形基数的比率来提高灵敏度。减少。同样,输出电压和应变分布表明三角形悬臂具有最高的效率和功率密度。

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