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雷诺数和弹簧刚度对涡激振动驱动的摩擦纳米发电机风能采集影响的实验研究

Experimental Investigation of Reynolds Number and Spring Stiffness Effects on Vortex-Induced Vibration Driven Wind Energy Harvesting Triboelectric Nanogenerator.

作者信息

Chang Qing, Fu Zhenqiang, Zhang Shaojun, Wang Mingyu, Pan Xinxiang

机构信息

Marine Engineering College, Dalian Maritime University, Dalian 116026, China.

School of Navigation and Shipping, Shandong Jiaotong University, Weihai 264200, China.

出版信息

Nanomaterials (Basel). 2022 Oct 13;12(20):3595. doi: 10.3390/nano12203595.

Abstract

Vortex-induced vibration (VIV) is a process that wind energy converts to the mechanical energy of the bluff body. Enhancing VIV to harvest wind energy is a promising method to power wireless sensor nodes in the Internet of Things. In this work, a VIV-driven square cylinder triboelectric nanogenerator (SC-TENG) is proposed to harvest broadband wind energy. The vibration characteristic and output performance are studied experimentally to investigate the effect of the natural frequency by using five different springs in a wide range of stiffnesses (27 N/m<K<90 N/m). The square cylinder is limited to transverse oscillation and experiments were conducted in the Reynolds regime (3.93×103−3.25×104). The results demonstrate the strong dependency of VIV on natural frequency and lock-in observed in a broad range of spring stiffness. Moreover, the amplitude ratio and range of lock-in region increase by decreasing spring stiffness. On the other hand, the SC-TENG with higher spring stiffness can result in higher output under high wind velocities. These observations suggest employing an adjustable natural frequency system to have optimum energy harvesting in VIV-based SC-TENG in an expanded range of operations.

摘要

涡激振动(VIV)是一个风能转化为钝体机械能的过程。增强涡激振动以获取风能是为物联网中的无线传感器节点供电的一种很有前景的方法。在这项工作中,提出了一种由涡激振动驱动的方形柱摩擦纳米发电机(SC-TENG)来收集宽带风能。通过使用五种不同刚度(27 N/m<K<90 N/m)的弹簧,在很宽的范围内对振动特性和输出性能进行了实验研究,以研究固有频率的影响。方形柱限于横向振荡,实验在雷诺数范围(3.93×103−3.25×104)内进行。结果表明,在很宽的弹簧刚度范围内,涡激振动对固有频率和锁定有很强的依赖性。此外,通过降低弹簧刚度,锁定区域的振幅比和范围会增大。另一方面,具有较高弹簧刚度的SC-TENG在高风速下可产生更高的输出。这些观察结果表明,采用可调固有频率系统,可在更广泛的运行范围内,在基于涡激振动的SC-TENG中实现最佳的能量收集。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9311/9608953/a737b2f222ae/nanomaterials-12-03595-g0A1.jpg

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