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Scaling and characterisation of a 2-DoF velocity amplified electromagnetic vibration energy harvester

机译:2-DOF速度放大电磁振动能量收割机的缩放与表征

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Vibration energy harvesters (VEHs) offer an alternative to batteries for the autonomous operation of low-power electronics. Understanding the influence of scaling on VEHs is of great importance in the design of reduced scale harvesters. The nonlinear harvesters investigated here employ velocity amplification, a technique used to increase velocity through impacts, to improve the power output of multiple-degree-of-freedom VEHs, compared to linear resonators. Such harvesters, employing electromagnetic induction, are referred to as velocity amplified electromagnetic generators (VAEGs), with gains in power achieved by increasing the relative velocity between the magnet and coil in the transducer. The influence of scaling on a nonlinear 2-DoF VAEG is presented. Due to the increased complexity of VAEGs, compared to linear systems, linear scaling theory cannot be directly applied to VAEGs. Therefore, a detailed nonlinear scaling method is utilised. Experimental and numerical methods are employed. This nonlinear scaling method can be used for analysing the scaling behaviour of all nonlinear electromagnetic VEHs. It is demonstrated that the electromagnetic coupling coefficient degrades more rapidly with scale for systems with larger displacement amplitudes, meaning that systems operating at low frequencies will scale poorly compared to those operating at higher frequencies. The load power of the 2-DoF VAEG is predicted to scale as P-L proportional to s(5.51) (s = volume(1/3)), suggesting that achieving high power densities in a VAEG with low device volume is extremely challenging.
机译:振动能量收割机(VEVES)为低功耗电子设备自主操作提供了替代电池。了解缩放对车辆的影响在减少秤收割机的设计方面具有重要意义。在这里研究的非线性收割机采用速度放大,一种用于通过冲击提高速度的技术,与线性谐振器相比,提高多程度自由度车辆的功率输出。这种采用电磁感应的收割机被称为速度放大的电磁发生器(VAEGS),通过提高磁体和换能器中的线圈之间的相对速度来实现的功率增益。提出了缩放对非线性2-DOF VAEG的影响。由于VAEGS的复杂性增加,与线性系统相比,线性缩放理论不能直接应用于VAEGS。因此,使用详细的非线性缩放方法。使用实验和数值方法。该非线性缩放方法可用于分析所有非线性电磁阀的缩放行为。结果证明,电磁耦合系数与具有较大位移幅度的系统的规模更快地降低,这意味着与在较高频率上操作的那些相比,在低频下运行的系统将规模不良。预测2-DOF VAEG的负载功率预测为与S(5.51)的P-L成比例(S =体积(1/3)),表明在具有低电平器件体积的VAEG中实现高功率密度非常具有挑战性。

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