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Design of a novel electrostatic micro energy harvester.

机译:新型静电微能量采集器的设计。

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摘要

The batteries have been a major source of energy for the electronic devices. However, the exhaustible nature of the batteries has encouraged the researchers to exploit the renewable energy sources for powering the electronics. Over the years, the researchers have tried to tap the stray energy provided by the ambient sources such as sun, wind, RF energy, vibration energy, etc. In the work presented here, an effort has been made to design a micro energy harvester, which would harness electric energy from the vibrations provided by the machine such as aircrafts, cars, engines, etc.;A variable capacitive device was designed such that the capacitance of the device changes with the change in the overlap area between the electrodes. The electrodes of the device were modified such that one of the electrodes was designed as a hollow cubic structure while the other electrode was inserted in it in the form of a stationary cantilever beam. A train of such modules was designed to obtain high capacitance values. Three device models were proposed where the number and the dimensions of cantilever beams were varied along with the dimensions of the cubic electrodes.;The devices were designed for the source acceleration of the range of 1.3--1.5g and the source frequency of 100 Hz. The displacement and the capacitance of the devices were determined by performing Finite Element Analysis (FEA) using the CoventorWare(TM) software. The capacitance values obtained from the simulations were then used to estimate the electrostatic energy that would be generated from the devices. The electrostatic energy was estimated for both charge-constrained and voltage-constrained conversion cycles. In the case of charge-constrained conversion cycle, the input voltage for the devices was assumed to be 10 V. On the other hand, in case of the voltage-constrained conversion cycle, a continuous input voltage of the 100 V was assumed to be supplied by an electrets material. The power generated was estimated by multiplying the energy with the frequency of vibrations (100 Hz). The device model number three named Model3_200CL203, was observed to be the best in terms of the amount of energy that would be generated. A volumetric power maximum of 1810 muW/cm 3 was estimated for a voltage-constrained conversion cycle, while the volumetric power of 21.64 muW/cm3 was estimated for the charge-constrained conversion cycle.;A fabrication process flow was also proposed. The metal electrodes were proposed to be fabricated using the electroplating process. A eutectic bonding process was proposed for realizing the hollow cubic structure. However, a few fabrication issues, such as realization of high aspect ratios and unreliable bonding of narrow bonding sites of the width of 5 mum, were predicted. Hence, a few design modifications were suggested for all the devices so that the fabrication of the devices can be made less challenging. The effects of design modifications, on the displacement and capacitance of the devices, were also studied by simulating the modified devices in CoventorWare(TM).
机译:电池一直是电子设备的主要能源。然而,电池的穷尽性促使研究人员开发可再生能源来为电子设备供电。多年来,研究人员一直在尝试利用周围环境提供的杂散能量,例如太阳,风,RF能量,振动能等。在本文介绍的工作中,我们已努力设计微型能量收集器,它可以利用飞机,汽车,发动机等机器提供的振动中的电能;设计可变电容设备,使设备的电容随电极之间重叠区域的变化而变化。对该设备的电极进行了修改,以使其中一个电极设计为空心立方结构,而另一个电极以固定悬臂梁的形式插入其中。设计了一系列这样的模块以获得高电容值。提出了三种设备模型,其中悬臂梁的数量和尺寸随立方电极的尺寸而变化。;该设备设计用于1.3--1.5g范围内的源加速度和100 Hz的源频率。通过使用CoventorWare TM软件执行有限元分析(FEA)来确定设备的位移和电容。然后将从仿真中获得的电容值用于估算将从设备产生的静电能。估计了电荷受限和电压受限转换周期的静电能。在电荷受限的转换周期的情况下,假定器件的输入电压为10V。另一方面,在电压受限的转换周期的情况下,假定连续输入电压为100V。由驻极体材料提供。通过将能量乘以振动频率(100 Hz)来估算产生的功率。就产生的能量而言,名为Model3_200CL203的第三个设备型号是最好的。对于电压受限的转换周期,估计的最大功率为1810μW/ cm 3,而对于电荷受限的转换周期,估计的最大功率为21.64μW/ cm 3。提出使用电镀工艺来制造金属电极。为了实现空心立方结构,提出了共晶键合工艺。但是,预计会出现一些制造问题,例如实现高长宽比和5毫米宽度的窄键合点的不可靠键合。因此,建议对所有器件进行一些设计修改,以便可以降低器件的制造难度。还通过在CoventorWare™中模拟修改后的设备,研究了设计修改对设备的位移和电容的影响。

著录项

  • 作者

    Ambokar, Madhumita.;

  • 作者单位

    The University of Texas at Arlington.;

  • 授予单位 The University of Texas at Arlington.;
  • 学科 Engineering Electronics and Electrical.;Nanotechnology.
  • 学位 M.S.
  • 年度 2011
  • 页码 125 p.
  • 总页数 125
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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