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Modeling and Tuning of Energy Harvesting Device Using Piezoelectric Cantilever Array.

机译:利用压电悬臂阵列对能量采集装置进行建模和调整。

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摘要

Piezoelectric devices have been increasingly investigated as a means of converting ambient vibrations into electrical energy that can be stored and used to power other devices, such as the sensors/actuators, micro-electro-mechanical systems (MEMS) devices, and microprocessor units etc. The objective of this work was to design, fabricate, and test a piezoelectric device to harvest as much power as possible from vibration sources and effectively store the power in a battery.;The main factors determining the amount of collectable power of a single piezoelectric cantilever are its resonant frequency, operation mode and resistive load in the charging circuit. A proof mass was used to adjust the resonant frequency and operation mode of a piezoelectric cantilever by moving the mass along the cantilever. Due to the tiny amount of collected power, a capacitor was suggested in the charging circuit as an intermediate station. To harvest sufficient energy, a piezoelectric cantilever array, which integrates multiple cantilevers in parallel connection, was investigated.;In the past, most prior research has focused on the theoretical analysis of power generation instead of storing generated power in a physical device. In this research, a commercial solid-state battery was used to store the power collected by the proposed piezoelectric cantilever array. The time required to charge the battery up to 80% capacity using a constant power supply was 970 s. It took about 2400 s for the piezoelectric array to complete the same task. Other than harvesting energy from sinusoidal waveforms, a vibration source that emulates a real environment was also studied. In this research the response of a bridge-vehicle system was used as the vibration sources such a scenario is much closer to a real environment compared with typical lab setups.
机译:越来越多地研究了压电设备,将其转换为电能,可以将其存储并用于为其他设备供电,例如传感器/执行器,微机电系统(MEMS)设备和微处理器单元等。这项工作的目的是设计,制造和测试压电器件,以从振动源中获取尽可能多的功率并将其有效地存储在电池中。主要因素决定了单个压电悬臂的可收集功率量是其谐振频率,工作模式和充电电路中的阻性负载。检验质量块通过沿悬臂梁移动来调节压电悬臂梁的谐振频率和工作模式。由于收集的功率很小,建议在充电电路中使用一个电容器作为中间站。为了收集足够的能量,对压电悬臂阵列进行了研究,该阵列在并联连接中集成了多个悬臂。过去,大多数现有研究集中在发电的理论分析上,而不是将发电量存储在物理设备中。在这项研究中,使用了一种商用固态电池来存储所提出的压电悬臂阵列所收集的电能。使用恒定电源为电池充电直至容量达到80%所需的时间为970 s。压电阵列完成相同的任务大约需要2400 s。除了从正弦波波形中收集能量外,还研究了模拟真实环境的振动源。在这项研究中,桥梁车辆系统的响应被用作振动源,因此与典型的实验室设置相比,这种情况更接近真实环境。

著录项

  • 作者

    Li, Yuejuan.;

  • 作者单位

    West Virginia University.;

  • 授予单位 West Virginia University.;
  • 学科 Mechanical engineering.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 156 p.
  • 总页数 156
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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