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Frequency Rectification Applied to Piezoelectric Energy Harvesting and Improving Available Power of Piezoelectric Motors.

机译:频率整流应用于压电能量收集和提高压电电动机的可用功率。

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摘要

Piezoelectric materials are just now, within the last decade, coming into their own as a commercial material. Capable of converting energy from the mechanical domain to the electrical domain; piezos are ideal sensors, vibration dampers, energy harvesters, and actuators. Frequency rectification, or the conversion of small, high frequency piezoelectric vibrations into useful low frequency actuation, is required to obtain widespread industrial use of piezoelectric devices. This work examines three manifestations of piezoelectric frequency rectification: energy harvesting, a hydraulic motor, and friction based commercial-off-the-shelf motors.;An energy harvesting device is developed, manufactured, and tested in this work, resulting in the development of a high Energy Density (J/m 3), high Power Density (W/m3) energy harvester. The device is shown to have an Energy Density nearly twice that of a similar conventional energy harvesting device. The result of this work is the development of an energy harvesting system that generates more energy in a given volume of piezoelectric material, opening the possibility of miniaturization of energy harvesting devices.;Also presented is an effort to integrate a high frequency, high flow rate micromachined valve array into a PiezoHydraulic Pump (PHP), enabling resonant operation of the PHP. Currently, the device is limited by the resonant frequency of the proprietary passive check valves. The PHP is fully characterized, and the microvalve array is tested to determine its resonant frequency in a fluid medium. The valve testing resulted in a resonant frequency of 6.9 kHz, slightly lower than the target operating frequency of 10 kHz.;Finally, the results of an examination of frequency rectification as applied to COTS piezoelectric motors are presented. Currently, motors are almost universally characterized based upon their available mechanical power. A better comparison is one based upon the actual Energy Density of the piezoelectric material utilized in the motor compared to the theoretical maximum Energy Density under the motor operating conditions (i.e., frequency, applied electric field). The result of this work is a more descriptive metric to evaluate piezoelectric motors that provides information on the effectiveness of the motor drive train; that is, how effectively the motion of the piezoelectric is transferred to the outside world.
机译:在过去的十年中,压电材料才刚刚成为一种商业材料。能够将能量从机械领域转换为电气领域;压电是理想的传感器,减振器,能量收集器和执行器。为了获得压电装置的广泛工业应用,需要进行频率整流或将小的高频压电振动转换为有用的低频激励。这项工作研究了压电频率整流的三种表现形式:能量收集,液压马达和基于摩擦的现成的商用马达。能量收集装置的研发,制造和测试,导致了压电式整流的发展。高能量密度(J / m 3),高功率密度(W / m3)能量收集器。该设备显示出的能量密度几乎是类似的传统能量采集设备的两倍。这项工作的结果是开发了一种能量收集系统,该系统可以在给定体积的压电材料中产生更多的能量,从而开启了能量收集设备小型化的可能性。还提出了一种集成高频,高流量的努力将微机械阀阵列放入压电液压泵(PHP)中,从而实现PHP的共振操作。当前,该设备受到专有被动止回阀的谐振频率的限制。 PHP具有完整的特性,并且对微阀阵列进行了测试,以确定其在流体介质中的共振频率。阀门测试得出的共振频率为6.9 kHz,略低于目标工作频率10 kHz。最后,给出了应用于COTS压电马达的频率整流的检查结果。当前,电动机基于其可用的机械功率几乎被普遍地表征。更好的比较是根据电动机中使用的压电材料的实际能量密度与电动机工作条件(即频率,施加的电场)下的理论最大能量密度进行比较。这项工作的结果是评估压电马达的更具描述性的指标,可提供有关马达传动系统有效性的信息。即,压电运动如何有效地传递到外界。

著录项

  • 作者

    Tieck, Ruth Marie.;

  • 作者单位

    University of California, Los Angeles.;

  • 授予单位 University of California, Los Angeles.;
  • 学科 Engineering Mechanical.;Energy.
  • 学位 Ph.D.
  • 年度 2006
  • 页码 200 p.
  • 总页数 200
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:39:49

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