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Multi-modal vibration based MEMS energy harvesters for ultra-low power wireless functional nodes

机译:基于多模式振动的MEMS能量收集器,用于超低功耗无线功能节点

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摘要

In this work we discuss a novel design concept of energy harvester (EH), based on Microsystem (MEMS) technology, meant to convert mechanical energy, available in the form of vibrations scattered in the surrounding environment, into electrical energy by means of the piezoelectric conversion principle. The resonant structure, named four-leaf clover (FLC), is circular and based on four petal-like double mass-spring systems, kept suspended through four straight beams anchored to the surrounding Silicon frame. Differently from standard cantilever-type EHs that typically convert energy uniquely in correspondence with the fundamental vibration frequency, this particular shape is aimed to exploit multiple resonant modes and, thereby, to increase the performance and the operation bandwidth of the MEMS device. A preliminary non-optimized design of the FLC is discussed and physical samples of the sole mechanical resonator, fabricated at the DIMES Technology Center (Delft University of Technology, the Netherlands), are experimentally characterized. Their behaviour is compared against simulations performed in ANSYS Workbench, confirming good accuracy of the predictive method. Furthermore, the electromechanical multiphysical behaviour of the FLC EH is also analysed in Workbench, by adding a layer with piezoelectric conversion properties in the simulation. The measured and simulated data reported in this paper confirm that the MEMS converter exhibits multiple resonant modes in the frequency range below 1 kHz, where most of the environmental vibration energy is scattered, and extracted power levels of 0.2 μW can be achieved as well, in closed-loop conditions. Further developments of this work are expected to fully prove the high-performance of the FLC concept, and are going to be addressed by the authors of this work in the on-going activities.
机译:在这项工作中,我们将讨论基于微系统(MEMS)技术的能量收集器(EH)的新颖设计概念,该概念旨在通过压电方式将以周围环境中分散的振动形式提供的机械能转换为电能。转换原理。这种共振结构被称为四叶草(FLC),是圆形的,基于四个花瓣状的双质量弹簧系统,通过锚定在周围硅框架上的四个直梁保持悬挂。与通常与基本振动频率相对应地唯一地转换能量的标准悬臂式EH有所不同,此特定形状旨在利用多种谐振模式,从而提高MEMS器件的性能和工作带宽。讨论了FLC的初步非优化设计,并对在DIMES技术中心(荷兰代尔夫特理工大学)制造的唯一机械谐振器的物理样本进行了实验表征。将其行为与在ANSYS Workbench中执行的仿真进行比较,确认了预测方法的良好准确性。此外,通过在仿真中添加具有压电转换特性的层,还可以在Workbench中分析FLC EH的机电多物理特性。本文报告的测量和模拟数据证实,MEMS转换器在1 kHz以下的频率范围内表现出多种谐振模式,其中大多数环境振动能量被分散,在这种情况下,提取的功率水平也可以达到0.2μW。闭环条件。这项工作的进一步发展有望充分证明FLC概念的高性能,并且这项工作的作者将在正在进行的活动中加以解决。

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