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Optimal coif transducer geometry for an electromagnetic nonlinear vibration energy harvester

机译:电磁非线性振动能量收割机的最佳CoIf传感器几何形状

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This paper investigates the optimisation of wire-coil transducers for a recently described strongly nonlinear electromagnetic (EM) vibration energy harvester, by coupling previously derived dynamics of the mechanical system with finite element analysis (FEA) to determine the harvester's EM response. The harvester is implemented in a permanent-magnet/ball-bearing arrangement, where vibrations in a host structure induce oscillations of the ball-bearing. The movement of the bearing changes the magnetic flux in a circular pancake wire-coil, inducing an electromotive force (EMF) in the coil and hence a voltage in the harvester circuit. A quintic-modified Duffing equation is applied to predict frequency-displacement relations for the nonlinear dynamics of the harvester. Faraday's Law of Induction is implemented with quasi-static FEA modelling of the magnetic field and linked to the dynamics of the system to develop a numeric model for voltage predictions. The issue of back-EMF and damping is also investigated. A fully integrated mechanical-electromagnetic model is shown to compare well to the quasi-static numerical model. The output characteristics of the prototype harvester are then compared with the numerical model. An optimal coil height of 2 mm is predicted, and demonstrated experimentally to produce 20.3 mW from a 12 Hz, 500 milli-g host vibration. Further investigation of coil inner radius and outer radius yields a predicted resistive load power transfer increase of 18% with the optimal coil geometry.
机译:本文通过耦合有限元分析(FEA)的机械系统的先前导出的动态来研究最近描述的强烈的非线性电磁(EM)振动能量收割机的线圈换能器的优化。通过有限元分析(FEA)来确定收割机的EM反应。收割机以永磁/滚珠轴承装置实施,其中宿主结构中的振动引起滚珠轴承的振动。轴承的运动改变了圆形煎饼线圈中的磁通量,诱导线圈中的电动势(EMF)并因此在收割机电路中的电压。应用了五颜六色改性的Duffing方程来预测收割机非线性动态的频率 - 位移关系。法拉第的诱导定律是用磁场的准静态FEA建模实施,并与系统的动态相关联,以开发用于电压预测的数值模型。还调查了反EMF和阻尼的问题。显示完全集成的机械电磁模型,以比较准静态数值模型。然后将原型收割机的输出特性与数值模型进行比较。预测最佳线圈高度为2mm,并通过12Hz,从12Hz,500毫升主体振动进行实验证明。进一步研究线圈内半径和外半径产生预测电阻负载功率转移,随着最佳线圈几何形状增加18%。

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