一对圆柱体涡激振动压电能量收集的参数化研究

Thomas Cornett, Arka Chattopadhyay, M. Esmaeilpour
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摘要

介绍了一种利用干涉钝体收集风能的压电装置的设计。采用悬臂梁、圆柱体作为振荡体和圆柱体作为干涉体的不同原型,研究了干涉钝体的尺寸和与固定振荡体的距离等特性对能量收集系统性能的影响。为了比较悬臂梁的振动频率和固有频率,采用有限元法进行了数值模拟,得到了悬臂梁的固有频率。结果表明,在振荡钝体的上游放置一个固定钝体作为干涉钝体,可以大大提高能量采集器的性能。通过实验测试,本研究表明,干涉缸直径和振荡与干涉缸之间的距离是影响能量采集器性能的关键因素。此外,干涉柱的直径及其与钝体的距离不同,还观察到两种不同的振荡模式。在所有情况下,采用快速傅里叶变换(FFT)分析监测振荡圆柱的频率,并将这些值与有限元法分析得到的固有频率进行比较。结果表明,短波束的振荡频率约为5 Hz,接近于6Hz的固有频率,而长波束的振荡频率约为2.2 Hz,接近于2.17Hz的固有频率。
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A Parametric Study of Piezoelectric Energy Harvesting by Vortex Induced Vibration of a Pair of Cylinders
The design of a piezoelectric based device that uses interference bluff body to harvest wind energy is presented. Different prototypes including cantilever beam, cylinder as oscillating body, and cylinder as interference body were used and tested to investigate the effects of interference bluff body’s properties such as the size and distance from fix oscillating body on the performance of energy harvesting system. To compare the frequency of oscillating beam and its natural frequency, a numerical simulation based on Finite Element Method was performed to obtain the natural frequency of cantilever beam. It was found that the energy harvester can be greatly improved by placing a fixed bluff body as interference bluff body in upstream of the oscillating bluff body. Through experimental tests, this study reveals that both diameter of interference cylinder and the distance between oscillating and interference cylinder play a key role in the energy harvester’s performance. Moreover, two different modes of oscillation were observed, depending on diameter of interference cylinder and its distance from bluff body. For all cases, the Fast Fourier Transform (FFT) analysis was used to monitor the frequency of oscillating cylinder and these values were compared with the natural frequencies obtained by Finite Element Method’s analysis. The results showed that the shorter beams oscillate with a frequency of about 5 Hz, close to the natural frequency of 6Hz, while the longer beams oscillate with a frequency of about 2.2 Hz, close to the natural frequency of 2.17Hz.
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