Park Jeonghoon, Lee Geon, Lee Dongwoo, Kim Miso, Rho Junsuk
Department of Mechanical Engineering, Pohang University of Science and Technology (POSTECH), Pohang 37673, Korea.
School of Advanced Materials Science and Engineering, Sungkyunkwan University (SKKU), Suwon 16419, Korea.
Nanomaterials (Basel). 2022 Mar 21;12(6):1019. doi: 10.3390/nano12061019.
The applicability of piezoelectric energy harvesting is increasingly investigated in the field of renewable energy. In improving harvester efficiency, manipulating elastic waves through a geometric configuration as well as upgrading harvester elements is important. Periodic structures, such as phononic crystals and metamaterials, are extensively employed to control elastic waves and enhance harvesting performance, particularly in terms of wave localization and focusing. In this study, we propose a double-focusing flexural energy harvesting platform consisting of a gradient-index lens and elastic Bragg mirror. Based on the design process, the frequency and time response of the harvesting platform are analyzed. The results indicate that the output voltage and power calculated at 1800 Ω are 7.9 and 62 times higher than those observed in the bare plate, respectively. Even when compared to the existing gradient-index system, they are 1.5 and 2.3 times higher, respectively. These findings can facilitate the usage of periodic structures as geometric stimuli to significantly enhance harvesting performance.
压电能量采集在可再生能源领域的适用性正受到越来越多的研究。在提高采集器效率方面,通过几何结构操纵弹性波以及升级采集器元件很重要。周期性结构,如声子晶体和超材料,被广泛用于控制弹性波并提高采集性能,特别是在波的局域化和聚焦方面。在本研究中,我们提出了一种由梯度折射率透镜和弹性布拉格镜组成的双聚焦弯曲能量采集平台。基于设计过程,分析了采集平台的频率和时间响应。结果表明,在1800Ω时计算出的输出电压和功率分别比裸板中观察到的高7.9倍和62倍。即使与现有的梯度折射率系统相比,它们也分别高出1.5倍和2.3倍。这些发现有助于将周期性结构用作几何刺激来显著提高采集性能。