面向遥感应用的混合非线性振动能量采集器的设计与优化研究

M. Hafizh, A. Muthalif
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引用次数: 0

摘要

提出了一种用于管道内涡激振动的压电-电磁混合式收割机的新设计。采用带电磁振荡器的宏纤维复合材料对压电能量采集器进行了建模。建立了流固耦合的解析和数值模型。利用有限元模型对不同钝体形状和方向进行了优化研究,其中三角形和2.5倍椭圆是最大化能量收集性能的最佳选择。为了提高带宽,还研究了双质量能量收集技术。二次梁使压电性能提高了21% ~ 52%。最后,进行了一项实验研究来验证窄带共振模型,并验证了磁耦合双宽带收割机(增强58%)的使用。该收割机的优化设计提高了性能,可以为无线应用中的传感器和设备供电。
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Towards Developing a Hybrid Nonlinear Vibration Energy Harvester for Remote Sensing Applications: A Design and Optimization Study
A novel design of a hybrid piezoelectric-electromagnetic harvester for vortex-induced vibration applications inside a pipe-flow is proposed. The piezoelectric energy harvester is modeled with a macro-fiber composite with an electromagnetic oscillator. Analytical and numerical models were developed for the fluid-structure interaction. An optimization study was conducted using finite element modelling across different bluff body shapes and orientations where triangle and 2.5x ellipse were optimal choices for maximizing energy harvesting properties. An investigation into dual-mass energy harvesting was also performed for bandwidth enhancement. A secondary beam has improved the piezoelectric performance by 21% to 52%. Finally, an experimental study was conducted to verify the narrowband resonance models and validate the use of a magnetically coupled dual broadband harvester (58% enhancement). Optimization and design of the harvester has led to improvements in performance that can realize powering sensors and devices in wireless applications.
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