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Vibration based T-shaped piezoelectric cantilever beam design using finite element method for energy harvesting devices

机译:基于振动的T形压电悬臂梁设计利用有限元方法来实现能量收集装置

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Ambient mechanical vibration energy can be converted into electrical energy using one of the most promising mechanism known as piezoelectric mechanism. In the mechanism, mechanical stress and strain generation in the piezoelectric materials can be converted into electrical energy which can be used for low power electronic devices. In this work, a T-shaped piezoelectric cantilever beam was analysed. The geometry of the cantilever beam was designed using SolidWorks. After that, the cantilever beam was simulated using Finite Element Method (FEM) in COMSOL Multiphysics. In the FEM simulation, the beam was kept under a vibration sources of 1g acceleration. As a result, maximum displacement at free end of the beam was found 2.47mm at resonant frequency of 238.75Hz. As piezoelectric energy harvesting from vibration depends on stress generation in piezoelectric materials, stress was analysed for the beam. The maximum amount of stress near the clamped end of the beam was found 2.39×108 N/m2 at resonance. The investigation showed that the designed and analysed T-shaped beam can be operated in low-frequency ambient vibration sources.
机译:使用称为压电机构的最有希望的机理之一,可以将环境机械振动能量转换成电能。在该机理中,压电材料中的机械应力和应变产生可以转换成可用于低功率电子设备的电能。在这项工作中,分析了T形压电悬臂梁。悬臂梁的几何形状使用SolidWorks设计。之后,使用COMSOL Multiphysics中的有限元方法(FEM)模拟悬臂梁。在有限元模拟中,梁在1G加速度的振动源处保持。结果,梁自由端的最大位移在238.75Hz的谐振频率下发现2.47mm。由于从振动中收集的压电能量取决于压电材料中的应力产生,分析了梁的应力。在共振时发现梁的夹持端附近的最大应力量为2.39×108n / m 2。该研究表明,设计和分析的T形梁可以在低频环境振动源中操作。

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