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Resistive and reactive loads' influences on highly coupled piezoelectric generators for wideband vibrations energy harvesting

机译:电阻性和电抗性负载对用于宽带振动能量收集的高耦合压电发电机的影响

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One of the main challenges in energy harvesting from ambient vibrations is to find efficient ways to scavenge the energy, not only at the mechanical system resonance but also on a wider frequency band. Instead of tuning the mechanical part of the system, as usually proposed in the state of the art, this article develops extensively the possibility to tune the properties of the harvester using the electrical interface. Due to the progress in materials, piezoelectric harvesters can exhibit relatively high electromechanical coupling: hence, the electrical part can now have a substantial influence on the global parameters of the piezoelectric system. In order to harness the energy efficiently from this kind of generator on a wide frequency band, not only the electrical load's effect on the harvester's damping should be tuned but also its effect on the harvester's stiffness. In this article, we present an analytical analysis of the influences of the resistive and reactive behavior of the electrical interface on highly coupled piezoelectric harvesters. We develop a normalized study of the multiphysics interactions, reducing the number of parameters of the problem to a few physically meaningful variables. The respective influence of each of these variables on the harvesting power has been studied and led us to the optimal electrical damping expression and the influences of the damping and of the coupling on the equivalent admittance of the piezoelectric energy harvester. Finally, we linked these normalized variables with real reactive load expressions, in order to study how a resistive, capacitive, and inductive behavior could affect the global performances of the system. The theoretical analysis and results are supported by experimental tests on a highly coupled piezoelectric system (k2=23%). Using an adequate tuning of a RC load at each frequency, the maximum harvested power (11 mu W) under a small acceleration amplitude of 0.5ms-2 is reached over a 14 Hz large frequency band around 105 Hz which has been predicted by the model with less than 5% error.
机译:从环境振动中收集能量的主要挑战之一是找到有效的方法来清除能量,不仅在机械系统共振时,而且在更宽的频带上。本文没有像通常在现有技术中提出的那样调整系统的机械部分,而是广泛地开发了使用电接口调整收割机性能的可能性。由于材料的进步,压电收集器可以表现出较高的机电耦合:因此,电气部分现在可以对压电系统的整体参数产生重大影响。为了在宽频带上有效利用此类发电机的能量,不仅应调整电负载对收割机阻尼的影响,还应调整其对收割机刚度的影响。在本文中,我们对高耦合压电采集器上的电接口的电阻和电抗行为的影响进行了分析分析。我们对多物理场相互作用进行了归一化研究,将问题的参数数量减少为几个对物理有意义的变量。已经研究了这些变量中的每一个对收集功率的各自影响,使我们获得了最佳的电阻尼表达式,以及阻尼和耦合对压电能量收集器的等效导纳的影响。最后,我们将这些归一化变量与实际电抗性负载表达式关联起来,以研究电阻,电容和电感行为如何影响系统的整体性能。理论分析和结果得到高度耦合压电系统(k2 = 23%)的实验测试的支持。通过在每个频率上对RC负载进行适当的调整,可以在模型预测的14 Hz大频段(约105 Hz)上在0.5ms-2的小加速度幅度下达到最大收获功率(11μW)误差小于5%。

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