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Design Methodologies for Low Flux Density, High Efficiency, kW Level Wireless Power Transfer Systems with Large Air Gaps.

机译:具有大气隙的低通量密度,高效率,kW级无线功率传输系统的设计方法。

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摘要

The objective of this work is to investigate resonant circuit and magnetic component design methodologies for multi-kW, MHz frequency, over 95% coil-to-coil efficiency, and large distance (20~40cm) wireless power transfer systems that achieve very low flux density in the air-gap. Design methodologies for resonant circuits as a part of a magnetically coupled system using lumped parameter equivalent circuit models have been proposed. A new design concept, the feasible design space, has been proposed which shows the combinations of the transmitter and receiver coils reactances that satisfy given voltage and current limits of the circuit. Using the feasible design space, the transmitter and receiver coil geometries which result in low flux density, high efficiency, high control stability, etc. have been calculated. The trade-offs between the system performances vs. transmitter and receiver coil geometries design have been demonstrated graphically. The optimal transmitter and receiver coils geometries have been selected from a new objective function. The proposed design methodology has been evaluated by means of FEA and experimental analysis. As a second focus of this research, a new magnetic component design methodology for improving power transfer efficiency at MHz operation has been investigated in this research. A new conductor layout methodology called surface spiral winding (SSW) was proposed and FEA models showed that it is effective in decreasing Ohmic losses and in increasing coupling coefficient between the transmitter and receiver. Design methodologies for the SSW coils have been proposed using analytical equations and FEA results. The proposed design methodologies have been evaluated via FEA and experimental analysis. Thermal modeling of the SSW coils has been developed and experimentally evaluated.;In the last part of this research, the impact of coil misalignment is investigated. By assuming the transmitter and the receiver coils as filaments, the mutual inductance of large air-gap wireless power transfer systems has been calculated. The analytical mutual inductance calculation was evaluated by FEA and experiments. The impacts of coil misalignment on the magnetic flux density, resonant frequency, power capability and efficiency have been investigated and the theoretical analyses were evaluated by means of FEA and experimental results.
机译:这项工作的目的是研究针对多kW,MHz频率,超过95%的线圈到线圈效率以及实现非常低通量的大距离(20〜40cm)无线电力传输系统的谐振电路和磁性组件设计方法气隙中的密度。已经提出了使用集总参数等效电路模型的谐振电路作为磁耦合系统一部分的设计方法。已经提出了一种新的设计概念,即可行的设计空间,该设计概念显示了满足给定电压和电流限制的发射器线圈和接收器线圈电抗的组合。使用可行的设计空间,计算了导致低通量密度,高效率,高控制稳定性等的发射器和接收器线圈的几何形状。系统性能与发射器和接收器线圈几何设计之间的权衡已通过图形方式演示。从新的目标函数中选择了最佳的发射器和接收器线圈几何形状。拟议的设计方法已通过有限元分析和实验分析进行了评估。作为这项研究的第二个重点,已经研究了一种新的磁性元件设计方法,该方法可以提高MHz工作时的功率传输效率。提出了一种新的导体布局方法,称为表面螺旋绕组(SSW),FEA模型表明,这种方法可有效减少欧姆损耗并增加发射器和接收器之间的耦合系数。已经使用解析方程和FEA结果提出了SSW线圈的设计方法。拟议的设计方法已通过有限元分析和实验分析进行了评估。已经开发了SSW线圈的热模型并进行了实验评估。;在本研究的最后一部分,研究了线圈未对准的影响。通过假设发射器线圈和接收器线圈为细丝,可以计算出大气隙无线电力传输系统的互感。解析互感计算通过有限元分析和实验进行了评估。研究了线圈未对准对磁通密度,谐振频率,功率能力和效率的影响,并通过有限元分析和实验结果对理论分析进行了评估。

著录项

  • 作者

    Lee, Seung-Hwan.;

  • 作者单位

    The University of Wisconsin - Madison.;

  • 授予单位 The University of Wisconsin - Madison.;
  • 学科 Engineering Electronics and Electrical.;Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 379 p.
  • 总页数 379
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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