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用于非确定性复合板中宽带能量收集的压电贴片的几何研究

Geometrical Investigation of Piezoelectric Patches for Broadband Energy Harvesting in Non-Deterministic Composite Plates.

作者信息

Muthalif Asan G A, Ali Abdelrahman, Renno Jamil, Wahid Azni N, Nor Khairul A M, Nordin Nor Hidayati Diyana

机构信息

Department of Mechanical and Industrial Engineering, Qatar University, Doha 2713, Qatar.

Smart Structures, Systems and Control Research Lab., Department of Mechatronics Engineering, International Islamic University Malaysia, Jalan Gombak, Kuala Lumpur 53100, Malaysia.

出版信息

Materials (Basel). 2021 Dec 1;14(23):7370. doi: 10.3390/ma14237370.

Abstract

Mechanical energy is the most ubiquitous form of energy that can be harvested and converted into useful electrical power. For this reason, the piezoelectric energy harvesters (PEHs), with their inherent electromechanical coupling and high-power density, have been widely incorporated in many applications to generate power from ambient mechanical vibrations. However, one of the main challenges to the wider adoption of PEHs is how to optimize their design for maximum energy harvesting. In this paper, an investigation was conducted on the energy harvesting from seven piezoelectric patch shapes (differing in the number of edges) when attached to a non-deterministic laminated composite (single/double lamina) plate subjected to change in fiber orientation. The performance of the PEHs was examined through a coupled-field finite element (FE) model. The plate was simply supported, and its dynamics were randomized by attaching randomly distributed point masses on the plate surface in addition to applying randomly located time-harmonic point forces. The randomization of point masses and point force location on a thin plate produce non-deterministic response. The design optimization was performed by employing the ensemble-responses of the electrical potential developed across the electrodes of the piezoelectric patches. The results present the optimal fiber orientation and patch shape for maximum energy harvesting in the case of single and double lamina composite plates. The results show that the performance is optimal at 0° or 90° fiber orientation for single-lamina, and at 0°/0° and 0°/90° fiber orientations for double-lamina composites. For frequencies below 25 Hz, patches with a low number of edges exhibited a higher harvesting performance (triangular for single-lamina/quadrilateral for double-lamina). As for the broadband frequencies (above 25 Hz), the performance was optimal for the patches with a higher number of edges (dodecagonal for single-lamina/octagonal for double-lamina).

摘要

机械能是最普遍存在的能量形式,可被收集并转化为有用的电能。因此,具有固有机电耦合和高功率密度的压电能量采集器(PEH)已被广泛应用于许多领域,以从环境机械振动中获取能量。然而,PEH更广泛应用的主要挑战之一是如何优化其设计以实现最大能量采集。本文研究了七种压电贴片形状(边数不同)在附着于纤维取向变化的非确定性层合复合材料(单层/双层)板上时的能量采集情况。通过耦合场有限元(FE)模型对PEH的性能进行了研究。该板为简支,除了施加随机定位的时谐点力外,还通过在板表面附着随机分布的点质量来使其动力学随机化。薄板上点质量和点力位置的随机化产生非确定性响应。通过利用压电贴片电极间产生的电势的整体响应进行设计优化。结果给出了单层和双层复合板在最大能量采集情况下的最佳纤维取向和贴片形状。结果表明,单层板在纤维取向为0°或90°时性能最佳,双层复合板在纤维取向为0°/0°和0°/90°时性能最佳。对于低于25Hz的频率,边数少的贴片表现出更高的采集性能(单层为三角形/双层为四边形)。至于宽带频率(高于25Hz),边数多的贴片性能最佳(单层为十二边形/双层为八边形)。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/035c/8658260/e1a29b2a31a8/materials-14-07370-g001.jpg

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本文引用的文献

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