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Fork-shaped bluff body for enhancing the performance of galloping-based wind energy harvester

机译:叉状钝体,用于增强基于疾驰的风能采集器的性能

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摘要

Galloping-based piezoelectric energy harvesting systems are being used to supply renewable electricity for the low-power wireless sensor network nodes. In this paper, a fork-shaped bluff body is presented as the basic system component, and demonstrated by experiments and simulations to improve the harvesting efficiency at low wind speed. For the fork-shaped structure, the fluid simulation results via CFD (Computational Fluid Dynamics) indicate that the '(sic)'-shaped region formed by two protruding front blades can help strengthen the vorticity to obtain high air lift force. The '(sic)'-shaped region formed by the middle transverse blade and the rear blade can induce a large pressure difference between two sides of the rear blade. The experimental results demonstrate that compared with the traditional bluff bodies such as triangular prism and square prism, the piezoelectric wind energy harvester with the fork-shaped structure can generate much higher output voltages. When the ratio (l(f)/W) of the front blade length (l(f)) to the bluff body width (W) is 1/4, the fork structure can induce the best harvesting performance. Further, by adding cover plates on two ends of the bluff body, the energy harvesting efficiency can be further improved in a wider blade length ratio (l(f)/W = 0.75 similar to 1) range. (C) 2019 Elsevier Ltd. All rights reserved.
机译:基于疾驰的压电能量收集系统正用于为低功率无线传感器网络节点提供可再生电力。本文以叉形钝体为基本系统组件,并通过实验和仿真进行了演示,以提高低风速下的收割效率。对于叉形结构,通过CFD(计算流体动力学)进行的流体模拟结果表明,由两个突出的前叶片形成的“(sic)”形区域可以帮助增强旋涡以获得较高的空气升力。由中间横向刀片和后刀片形成的“(sic)”形区域会在后刀片的两侧之间引起较大的压力差。实验结果表明,与传统的钝体(如三角棱柱和方棱柱)相比,具有叉状结构的压电风能采集器可以产生更高的输出电压。当前叶片长度(l(f))与钝体宽度(W)之比(l(f)/ W)为1/4时,叉形结构可产生最佳收割性能。此外,通过在钝体的两端增加盖板,可以在较宽的叶片长度比(l(f)/ W = 0.75,类似于1)的范围内进一步提高能量收集效率。 (C)2019 Elsevier Ltd.保留所有权利。

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