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Design, simulation, fabrication, and characterization of MEMS vibration energy harvesters.

机译:MEMS振动能量收集器的设计,仿真,制造和表征。

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摘要

Energy harvesting from ambient sources has been a longtime goal for microsystem engineers. The energy available from ambient sources is substantial and could be used to power wireless micro devices, making them fully autonomous. Self-powered wireless sensors could have many applications in for autonomous monitoring of residential, commercial, industrial, geological, or biological environments. Ambient vibrations are of particular interest for energy harvesting as they are ubiquitous and have ample kinetic energy. In this work a MEMS device for vibration energy harvesting using a variable capacitor structure is presented. The nonlinear electromechanical dynamics of a gap-closing type structure is experimentally studied. Important experimental considerations such as the importance of reducing off-axis vibration during testing, characterization methods, dust contamination, and the effect of grounding on parasitic capacitance are discussed. A comprehensive physics based model is developed and validated with two different microfabricated devices. To achieve maximal power, devices with high aspect ratio electrodes and a novel two-level stopper system are designed and fabricated. The maximum achieved power from the MEMS device when driven by sinusoidal vibrations was 3.38 muW. Vibrations from HVAC air ducts, which have a primary frequency of 65 Hz and amplitude of 155 mgrms, are targeted as the vibration source and devices are designed for maximal power harvesting potential at those conditions. Harvesting from the air ducts, the devices reached 118 nW of power. When normalized to the operating conditions, the best figure of merit of the devices tested was an order of magnitude above state-of-the-art of the devices (1.24E-6).
机译:对于微系统工程师来说,从周围环境中收集能量一直是一个长期目标。来自周围环境的能量非常可观,可用于为无线微型设备供电,从而使其完全自主。自供电的无线传感器可以在住宅,商业,工业,地质或生物环境的自动监视中具有许多应用。环境振动对于能量收集特别重要,因为它们无处不在且具有足够的动能。在这项工作中,提出了一种使用可变电容器结构来收集振动能量的MEMS器件。实验研究了间隙闭合型结构的非线性机电动力学。讨论了重要的实验考虑因素,例如减少测试过程中离轴振动的重要性,表征方法,粉尘污染以及接地对寄生电容的影响。开发了基于物理的综合模型,并使用两个不同的微型设备进行了验证。为了获得最大功率,设计并制造了具有高纵横比电极和新颖的两级限位器系统的设备。当由正弦振动驱动时,从MEMS器件获得的最大功率为3.38μW。来自HVAC空气导管的振动(其主频率为65 Hz,振幅为155 mgrms)被用作振动源,并且设备被设计为在这些条件下具有最大的能量收集潜力。从风道收集到的设备功率达到118 nW。当根据操作条件进行归一化时,所测试设备的最佳品质因数比最新技术水平(1.24E-6)高一个数量级。

著录项

  • 作者

    Oxaal, John.;

  • 作者单位

    Rensselaer Polytechnic Institute.;

  • 授予单位 Rensselaer Polytechnic Institute.;
  • 学科 Mechanical engineering.;Energy.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 148 p.
  • 总页数 148
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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