Wang Yi-Ren, Kuo Chun-Hsiao
Department of Aerospace Engineering, Tamkang University, New Taipei City 25137, Taiwan.
Sensors (Basel). 2023 Sep 1;23(17):7610. doi: 10.3390/s23177610.
This study aims to enhance conventional vibration energy harvesting systems (VEHs) by repositioning the piezoelectric patch (PZT) in the middle of a fixed-fixed elastic steel sheet instead of the root, as is commonly the case. The system is subjected to an axial simple harmonic force at one end to induce transversal vibration and deformation. To further improve power conversion, a baffle is strategically installed at the point of maximum deflection, introducing a slapping force to augment electrical energy harvesting. Employing the theory of nonlinear beams, the equation of motion for this nonlinear elastic beam is derived, and the method of multiple scales (MOMS) is used to analyze the phenomenon of parametric excitation. This study demonstrates through experiments and theoretical analysis that the second mode yields better power generation benefits than the first mode. Additionally, the voltage generation benefits of the enhanced system with the added baffle (slapping force) surpass those of traditional VEH systems. Overall, the proposed model proves feasible and holds promising potential for efficient vibration energy harvesting applications in various industrial sectors.
本研究旨在改进传统的振动能量收集系统(VEH),将压电片(PZT)重新放置在固定-固定弹性钢板的中间而非根部,通常情况下压电片是放置在根部的。该系统一端受到轴向简谐力作用,以引发横向振动和变形。为进一步提高功率转换,在最大挠度点处策略性地安装了一个挡板,引入拍击力以增强电能收集。运用非线性梁理论,推导了该非线性弹性梁的运动方程,并采用多尺度法(MOMS)分析参数激励现象。本研究通过实验和理论分析表明,第二模态比第一模态产生更好的发电效益。此外,带有附加挡板(拍击力)的增强系统的电压产生效益超过传统VEH系统。总体而言,所提出的模型证明是可行的,在各个工业领域的高效振动能量收集应用中具有广阔的潜力。