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Design and analysis of an unconventional permanent magnet linear machine for energy harvesting.

机译:一种用于能量收集的非常规永磁直线电机的设计和分析。

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摘要

This Ph.D. dissertation proposes an unconventional high power density linear electromagnetic kinetic energy harvester, and a high-performance two-stage interface power electronics to maintain maximum power abstraction from the energy source and charge the Li-ion battery load with constant current. The proposed machine architecture is composed of a double-sided flat type silicon steel stator with winding slots, a permanent magnet mover, coil windings, a linear motion guide and an adjustable spring bearing. The unconventional design of the machine is that NdFeB magnet bars in the mover are placed with magnetic fields in horizontal direction instead of vertical direction and the same magnetic poles are facing each other. The derived magnetic equivalent circuit model proves the average air-gap flux density of the novel topology is as high as 0.73 T with 17.7% improvement over that of the conventional topology at the given geometric dimensions of the proof-of-concept machine. Subsequently, the improved output voltage and power are achieved. The dynamic model of the linear generator is also developed, and the analytical equations of output maximum power are derived for the case of driving vibration with amplitude that is equal, smaller and larger than the relative displacement between the mover and the stator of the machine respectively. Furthermore, the finite element analysis (FEA) model has been simulated to prove the derived analytical results and the improved power generation capability. Also, an optimization framework is explored to extend to the multi-Degree-of-Freedom (n-DOF) vibration based linear energy harvesting devices. Moreover, a boost-buck cascaded switch mode converter with current controller is designed to extract the maximum power from the harvester and charge the Li-ion battery with trickle current. Meanwhile, a maximum power point tracking (MPPT) algorithm is proposed and optimized for low frequency driving vibrations. Finally, a proof-of-concept unconventional permanent magnet (PM) linear generator is prototyped and tested to verify the simulation results of the FEA model. For the coil windings of 33, 66 and 165 turns, the output power of the machine is tested to have the output power of 65.6 mW, 189.1 mW, and 497.7 mW respectively with the maximum power density of 2.486 mW/cm3.
机译:本博士论文提出了一种非常规的高功率密度线性电磁动能采集器,以及一种高性能的两级接口功率电子器件,以保持从能源中获取最大功率,并以恒定电流为锂离子电池负载充电。所提出的机器结构由带有绕组槽的双面扁平型硅钢定子,永磁体,线圈绕组,线性运动导轨和可调弹簧轴承组成。该机器的非常规设计是,将动子中的NdFeB磁棒放置在水平方向而不是垂直方向的磁场中,并且相同的磁极彼此面对。推导的磁等效电路模型证明,在给定的概念验证机几何尺寸下,新型拓扑的平均气隙磁通密度高达0.73 T,比传统拓扑的平均气隙磁通密度提高了17.7%。随后,获得改善的输出电压和功率。还建立了线性发电机的动力学模型,推导了振幅分别等于,小于或大于电机动子与定子之间的相对位移的驱动振动情况下的输出最大功率的解析方程。 。此外,已经对有限元分析(FEA)模型进行了仿真,以证明导出的分析结果和改进的发电能力。此外,探索了一种优化框架,以扩展到基于多自由度(n-DOF)的线性能量收集装置。此外,带有电流控制器的升压/降压级联开关模式转换器旨在从采集器中提取最大功率,并通过trick流电流为锂离子电池充电。同时,提出了最大功率点跟踪算法(MPPT),并针对低频驱动振动进行了优化。最后,对概念验证非常规永磁(PM)线性发电机进行原型设计和测试,以验证FEA模型的仿真结果。对于33、66和165匝的线圈绕组,测试电机的输出功率分别为65.6 mW,189.1 mW和497.7 mW,最大功率密度为2.486 mW / cm3。

著录项

  • 作者

    Zeng, Peng.;

  • 作者单位

    Illinois Institute of Technology.;

  • 授予单位 Illinois Institute of Technology.;
  • 学科 Engineering Electronics and Electrical.;Energy.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 131 p.
  • 总页数 131
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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