Analytical evaluation and experimental validation of energy harvesting using low-frequency band of piezoelectric bimorph actuator

双晶片 材料科学 压电 悬臂梁 声学 执行机构 结构工程 分层(地质) 有限元法 各向同性 材料性能 梁(结构) 频率响应 复合材料 工程类 光学 古生物学 物理 俯冲 生物 电气工程 构造学
作者
Kaushik Mishra,Subrata Kumar Panda,Vikash Kumar,Hukum Chand Dewangan
出处
期刊:Smart Structures and Systems [Technopress]
卷期号:26 (3): 391-401 被引量:16
标识
DOI:10.12989/sss.2020.26.3.391
摘要

The present article reports the feasibility of the electrical energy generation from ambient low-frequency vibration using a piezoelectric material mounted on a bimorph cantilever beam actuator. A corresponding higher-order analytical model is developed using MATLAB in conjunction with finite element method under low-frequency with both damped and undamped conditions. An alternate model is also developed to check the material and dimensional viability of both piezoelectric materials (mainly focussed to PVDF and PZT) and the base material. Also, Genetic Algorithm is implemented to find the optimum dimensions which can produce the higher values of voltage at low-frequency frequencies (≤ 100 Hz). The delamination constraints are employed to avoid inter-laminar stresses and to increase the fracture toughness. The delamination has been done using a Teflon sheet sandwiched in between base plates and the piezo material is stuck to the base plate using adhesives. The analytical model is tested for both homogenous and isotropic material characteristics of the base material and extended to investigate the effect of the different geometrical parameters (base plate dimensions, piezo layer dimensions and placement, delamination thickness and placement, excitation frequency) on the model responses of the bimorph cantilever beam. It has been observed that when the base material characteristics are homogenous, the efficiency of the model remains higher when compared to the condition when it is of isotropic material. The necessary convergence behaviour of the current numerical model has been established and checked for the accuracy by comparing with available published results. Finally, using the results obtained from the model, a prototype is fabricated for the experimental validation via a suitable circuit considering Glass fibre and Aluminium as the bimorph material.
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