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Modeling and design of compact microwave components and systems for wireless communications and power transmission.

机译:用于无线通信和功率传输的紧凑型微波组件和系统的建模和设计。

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摘要

The contribution of the work here presented involves three main topics: Wireless Power Transmission (WPT) technology, phased array systems, and microwave components design and modeling. The first topic presents the conceptual design of a WPT system at 2.45GRz with 90% efficiency and 1MW of DC output power. Second, a comparative study between 2.45 and 35GHz WPT operation is provided. Finally, the optimization of a taper distribution with reduced thermal constraints on a sandwich transmitter is realized. For a 250- and 375-m antenna radius, 89.7% of collection efficiency with 29% reduction in maximum power density (compared to the Gaussian), and 93% collection efficiency with 39% reduction of maximum power density, are obtained respectively with two split tapers. The reduction in maximum power density and the use of split taper are important to alleviate the thermal problems in high power transmission.; For the phased array project, the conceptual design of a small-scale system and in-depth analysis using two main approaches (statistical and field analysis) is realized. Practical aspects are addressed to determine the phased array main design features. The statistical method provides less accurate results than the field analysis since it is intended for large arrays. Careful theoretical analysis led to good correlation between statistical, field analysis and experimental results.; In the components chapter, efficient loop transitions used in a patch antenna array are designed at K- and W-band. Measured insertion loss (IL) K-band loop is under 0.4dB. The K- and W-band antenna array measured broadside gains are 23.6dB at 24.125GHz and 25dB at 76.5GHz with return loss under 9.54dB from 24 to 24.4GHz and 12 dB from 75.1 to 77.3GHz, respectively. Also, a multilayer folded line filter is designed at 5.8GHz and compared to planar ring filters. Improved measured bandwidth from 2GHz to 7.5GHz and IL of 1.2dB are obtained with approximately half the size of a planar ring resonator. Thirdly, a simplified switch model is implemented for use in broadband phased-shifters. The model presents very good fit to the measured results with an overall total error under 3%, magnitude error less than 8%, and phase errors less than ±0.4°.
机译:本文介绍的工作的贡献涉及三个主要主题:无线功率传输(WPT)技术,相控阵系统以及微波组件的设计和建模。第一个主题介绍了功率为2.45GRz,效率为90%,直流输出功率为1MW的WPT系统的概念设计。其次,提供了2.45和35GHz WPT操作之间的比较研究。最后,实现了在三明治式变送器上具有减小的热约束的锥度分布的优化。对于250米和375米的天线半径,分别获得两个,分别获得89.7%的收集效率和29%的最大功率密度(与高斯相比),最大功率密度降低了39%(最大功率密度降低了)。锥度。最大功率密度的减小和分流锥的使用对于减轻高功率传输中的热问题很重要。对于相控阵项目,实现了小型系统的概念设计和使用两种主要方法(统计和现场分析)的深入分析。解决实际问题以确定相控阵主要设计特征。统计方法的结果不如现场分析准确,因为它适用于大型阵列。仔细的理论分析导致统计,实地分析和实验结果之间的良好关联。在组件一章中,在K波段和W波段设计了贴片天线阵列中使用的有效环路过渡。测得的插入损耗(IL)K波段环路低于0.4dB。在24.125GHz处测得的K和W波段天线阵列的宽边增益为23.6dB,在76.5GHz处测得的宽边增益为25dB,从24到24.4GHz的回波损耗低于9.54dB,从75.1到77.3GHz的回波损耗分别为12dB。此外,多层折叠线滤波器设计为5.8GHz,与平面环形滤波器相比。从2GHz到7.5GHz的改进的测量带宽和1.2dB的IL获得了大约平面环形谐振器尺寸的一半。第三,实现了简化的开关模型以用于宽带移相器。该模型非常适合测量结果,总总误差小于3%,幅度误差小于8%,相位误差小于±0.4°。

著录项

  • 作者

    Zepeda, Paola.;

  • 作者单位

    Texas A&M University.;

  • 授予单位 Texas A&M University.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2003
  • 页码 282 p.
  • 总页数 282
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 无线电电子学、电信技术;
  • 关键词

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