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Modeling and verification of piezoelectric wind energy harvesters enhanced by interaction between vortex-induced vibration and galloping

机译:通过涡旋振动振动和疾驰的相互作用增强压电风能收割机的建模与验证

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Previous works verified experimentally that interactions between vortex-induced vibration (VIV) and galloping may greatly improve the performance of piezoelectric wind energy harvesters (PWEHs) at low wind speeds. However, no mathematical model has been available to date to predict the responses or optimize the structures of PWEHs. In this paper, a distributed-parameter electromechanical coupling model of a VIV-galloping interactive PWEH was derived and was then experimentally validated using two harvester prototypes. For the first prototype, while the theoretical critical galloping speed is approximately 2.1 times the theoretical critical VIV speed, the experiments verified the proposed model's prediction that this harvester involves full interaction between VIV and galloping because there is only one wind speed region (in the wind speed range of interest) that offers high electrical output. For the second prototype, whose theoretical galloping speed is about 2.3 times the critical VIV speed, the model indicates that there are two completely separate wind speed regions that have relatively high electrical outputs, implying that this is a harvester without the interaction between VIV and galloping, coinciding with the experimental results. For both prototypes, the model is accurate enough to predict the onset reduced speeds for the wind speed regions with high electrical outputs, and can be used to obtain the output voltage in the wind speed range of interest. The proposed model can thus be used to design VIV-galloping interactive PWEHs with enhanced performance in the collection of low speed airflows.
机译:以前的作品通过实验验证,涡旋诱导的振动(VIV)和疾驰之间的相互作用可以大大提高压电风能收割机(PWEH)在低风速下的性能。然而,没有迄今为止没有数学模型以预测响应或优化PWEH的结构。在本文中,推导出VIV疾驰交互式PWEH的分布式参数机电耦合模型,然后使用两个收割机原型进行实验验证。对于第一个原型,而理论临界疾驰速度约为理论关键的VIV速度约为2.1倍,实验验证了所提出的模型的预测,即这种收割机涉及VIV和疾驰之间的完全相互作用,因为只有一个风速区域(在风中提供高电输出的速度范围。对于第二种原型,其理论良好速度为临界VIV速度的2.3倍,模型表示有两个完全独立的风速区域具有相对高的电输出,这意味着这是没有VIV和疾驰之间的相互作用的收割机,与实验结果一致。对于两个原型,该模型足够精确地预测具有高电输出的风速区域的起始速度,并且可用于获得感兴趣的风速范围内的输出电压。因此,所提出的模型可用于设计VIV良好的交互式PWEH,在低速气流的集合中具有增强的性能。

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