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Nonlinear dynamics and comparative analysis of hybrid piezoelectric-inductive energy harvesters subjected to galloping vibrations

机译:疾驰振动的混合压电感应能量采集器的非线性动力学和比较分析

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Modeling and comparative analysis of galloping-based hybrid piezoelectric-inductive energy harvesting systems are investigated. Both piezoelectric and electromagnetic transducers are attached to the transverse degree of freedom of the prismatic structure in order to harvest energy from two possible sources. A fully-coupled electroaeroelastic model is developed which takes into account the coupling between the generated voltage from the piezoelectric transducer, the induced current from the electromagnetic transducer, and the transverse displacement of the bluff body. A nonlinear quasi-steady approximation is employed to model the galloping force. To determine the influences of the external load resistances that are connected to the piezoelectric and electromagnetic circuits on the onset speed of galloping, a deep linear analysis is performed. It is found that the external load resistances in these two circuits have significant effects on the onset speed of galloping of the harvester with the presence of optimum values. To investigate the effects of these transduction mechanisms on the performance of the galloping energy harvester, a nonlinear analysis is performed. Using the normal form of the Hopf bifurcation, it is demonstrated that the hybrid energy harvester has a supercritical instability for different values of the external load resistances. For well-defined wind speed and external load resistance in the electromagnetic circuit, the results showed that there is a range of external load resistances in the piezoelectric circuit at which the output power generated by the electromagnetic induction is very small. On the other hand, there are two optimal load resistances at which the output power by the piezoelectric transducer is maximum. Based on a comparative study, it is demonstrated the hybrid piezoelectric-inductive energy harvester is very beneficial in terms of having two sources of energy. However, compared to the classical piezoelectric and electromagnetic energy harvesters, the results show that, considering a hybrid energy harvester leads to an increase in the onset speed of galloping and a decrease in the levels of the harvested power in both the piezoelectric and electromagnetic circuits which is explained by the additional resistive shunt damping effects in the hybrid energy harvester.
机译:研究了基于舞动的混合压电感应能量采集系统的建模和比较分析。压电换能器和电磁换能器都附接到棱镜结构的横向自由度,以便从两个可能的源中收集能量。建立了一个全耦合的电气动弹性模型,该模型考虑了压电换能器产生的电压,电磁换能器产生的感应电流以及阻流体的横向位移之间的耦合。非线性准稳态近似被用来模拟驰force力。为了确定连接到压电和电磁电路的外部负载电阻对舞动开始速度的影响,进行了深入的线性分析。发现在存在最佳值的情况下,这两个电路中的外部负载电阻对收割机疾驰的开始速度具有重大影响。为了研究这些转导机制对驰energy能量采集器性能的影响,进行了非线性分析。使用霍普夫分支的正常形式,证明了混合式能量收集器对于不同的外部负载电阻值具有超临界不稳定性。对于明确定义的风速和电磁电路中的外部负载电阻,结果表明,压电电路中存在一定范围的外部负载电阻,在该范围内,由电磁感应产生的输出功率非常小。另一方面,存在两个最佳负载电阻,在这些负载电阻下,压电换能器的输出功率最大。在一项比较研究的基础上,证明了混合压电感应式能量收集器在拥有两种能量来源方面非常有益。但是,与传统的压电和电磁能量收集器相比,结果表明,考虑使用混合能量收集器,会导致舞动的开始速度增加,并且压电和电磁电路中的收集功率水平降低,从而用混合能量采集器中的附加电阻分流阻尼效应来解释。

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