论文标题

通过现场诱导的磁启用的能量自主传感器的宽带振动能量收割机的参数放大

Parametric Amplification of Broadband Vibrational Energy Harvesters for Energy-Autonomous Sensors Enabled by Field-Induced Striction

论文作者

Nabholz, Ulrike, Lamprecht, Lukas, Mehner, Jan E., Zimmermann, André, Degenfeld-Schonburg, Peter

论文摘要

我们研究了参数激发对能量自主传感器系统中MEMS振动能量收获器的影响。在行业4.0(或工业物联网)应用中,互连传感器为自动控制制造过程提供了一种数据获取手段。确保传感器的连续能源供应对于它们的可靠操作至关重要。制造机通常显示出广泛的振动频率,需要由一系列收割机子结构覆盖,以维持所需的输出水平。我们表明,旨在实现Helmholtz抑制振荡器的机械结构通过利用几个参数共振阶来增加带宽。与在多模式方案中实现参数放大的概念相反,我们的概念基于单个机械模式。因此,由于相关的多模式共振条件不需要在单芯片的水平上匹配,因此对制造公差更为强大。使用精确的瞬态仿真和半分析模型来展示脱离Helmholtz的振荡器与阻尼和驱动的Mathieu方程的关系,我们表明,每当存在高Helmholtz非线性时,参数共振会大大提高输出功率的带宽。为了达到所需的非线性,我们建议非线性应力 - 应变曲线,并建议通过通过磁磁或电图通过场诱导的磁效率实现此类非线性。因此,我们能够提出一种新型的能量收割机概念,该概念结合了严格的材料,以利用参数激发的影响,以实现宽带振动能量收集。

We investigate the influence of parametric excitation on MEMS vibration energy harvesters for energy autonomous sensor systems. In Industry 4.0 (or Industrial IoT) applications, interconnected sensors provide a means of data acquisition for automated control of the manufacturing process. Ensuring a continuous energy supply to the sensors is essential for their reliable operation. Manufacturing machines usually display a wide spectrum of vibration frequencies which needs to be covered by an array of harvester substructures in order to maintain the desired output level. We show that mechanical structures designed to implement a Helmholtz-Duffing oscillator have an increased bandwidth by exploiting several orders of parametric resonances. In contrast to concepts implementing parametric amplification in a multi-mode scenario, our concept is based on a single mechanical mode. Therefore, it is more robust against fabrication tolerances as the relevant multi-mode resonance conditions do not need to be matched on the level of single chips. Using exact transient simulations and semi-analytic models to showcase the relation of the Helmholtz-Duffing oscillator to the damped and driven Mathieu equation, we show that parametric resonances highly increase the bandwidth of the output power whenever high Helmholtz nonlinearities are present. To achieve the required nonlinearities, we suggest nonlinear stress-strain curves and we propose to achieve such nonlinearities through field-induced striction by magneto- or electrostriction. Thus, we are able to propose a novel energy harvester concept incorporating strictive materials that exploits the effects of parametric excitation to achieve broadband vibrational energy harvesting.

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