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Numerical and experimental investigation of piezoelectric energy harvester based on flag-flutter

机译:基于旗颤振的压电能量采集器的数值与实验研究

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In the present era, the demand for self-powered electronic instruments is increasing and their energy consumption is decreasing. The ability to extract energy from the operating environment is of great importance in advanced industrial applications particularly in the field of aerospace. In this research, a flag-flutter based piezoelectric (PZT) energy harvester is modeled based on fluid-structure interaction (FSI) that represents an important area of research for the development of innovative energy harvesting solution. The possibility to harvest energy from Limit Cycle Oscillations (LCOs) by means of piezoelectric transduction is investigated via numerical and experimental tests. Moreover, the flutter instability of a cantilevered flag with piezoelectric (PZT) and Aluminium (Al) patches, subjected to an axial flow has been investigated. The numerical simulations are performed in MSC Nastran software and the experimental campaign is performed in a subsonic wind-tunnel. The practical interest of this instability mechanism, which can lead to self-sustained oscillations, is the possible application in flow energy harvesting. Furthermore, the critical velocities for different length of flags are also predicted numerically and experimentally. The numerical results are in good agreement with experiments, as well as with results in the literature. The maximum power output obtained by the designed harvester experimentally is found to be 1.12 mW for 66.6 k Omega resistance. The presented model is suitable to harvest energy and to drive wireless sensors. (C) 2019 Elsevier Masson SAS. All rights reserved.
机译:在当今时代,对自供电电子仪器的需求在增加,其能耗也在降低。从操作环境中提取能量的能力在先进的工业应用中,特别是在航空航天领域中,非常重要。在这项研究中,基于流固耦合(FSI)对基于旗颤振的压电(PZT)能量采集器进行了建模,这代表了开发创新的能量采集解决方案的重要研究领域。通过数值和实验测试,研究了通过压电换能从极限循环振荡(LCO)收集能量的可能性。此外,已经研究了带有压电(PZT)和铝(Al)贴片的悬臂旗的颤振不稳定性,该颤动不稳定性受到轴向流动的影响。数值模拟在MSC Nastran软件中进行,实验活动在亚音速风洞中进行。可能导致自持振荡的这种不稳定机制的实际利益是在流能收集中的可能应用。此外,还通过数值和实验预测了不同长度标志的临界速度。数值结果与实验以及文献中的结果非常吻合。对于66.6 kΩ的电阻,通过实验设计的收割机获得的最大功率输出为1.12 mW。提出的模型适合于收集能量并驱动无线传感器。 (C)2019 Elsevier Masson SAS。版权所有。

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