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A SMART DEVICE FOR HARNESSING ENERGY FROM AERODYNAMIC FLOW FIELDS

机译:用于从气流场增强能量的智能装置

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In this work, inspired by music playing harmonicas, we conduct a conceptual investigation of a coupled aero-electromechanical system for wind energy harvesting. The system consists of a piezoelectric cantilever unimorph structure embedded within an air chamber to mimic the vibration of the reeds in a harmonica when subjected to air flow. In principle, when wind blows into the air chamber, the air pressure in the chamber increases and bends the cantilever beam opening an air path between the chamber and the environment. When the volumetric flow rate of air past the cantilever is large enough, the energy pumped into the structure via the nonlinear pressure forces offset the intrinsic damping in the system setting the beam into self-sustained limit-cycle oscillations. These oscillations induce a periodic strain in the piezoelectric layer which produces a voltage difference that can be channeled into an electric load. Unlike traditional vibratory energy harvesters where the excitation frequency needs to match the resonant frequency of the device for efficient energy extraction, the nonlinearly coupled aero-elasto dynamics of this device guarantees autonomous vibration of the cantilever beam near its natural frequency as long as the volu-metric flow rate is larger than a certain threshold. Experimental results are presented to demonstrate the ability of this device to harvest wind energy under normal wind conditions.
机译:在这项工作中,受口琴音乐演奏的启发,我们对用于风能收集的航空电子机械系统进行了概念研究。该系统由嵌入空气腔内的压电悬臂单压电晶片结构组成,以模仿簧片在空气流中时簧片的振动。原则上,当风吹入气室时,气室中的气压会增加,并使悬臂梁弯曲,从而打开气室与环境之间的空气路径。当通过悬臂的空气的体积流量足够大时,通过非线性压力泵入结构的能量会抵消系统中的固有阻尼,从而使射束成为自持的极限循环振荡。这些振荡会在压电层中引起周期性应变,从而产生电压差,该电压差可传导到电负载中。与传统的振动能量收集器不同,传统的振动能量收集器的激发频率需要与设备的谐振频率相匹配才能有效地提取能量,而非线性耦合的空气弹力动力学可以确保悬臂梁在其固有频率附近的自发振动,只要其体积为零即可。 公制流量大于某个阈值。给出实验结果以证明该设备在正常风况下收集风能的能力。

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