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Modelling of wireless channels and validation using a scaled mm-wave measurement system.

机译:使用缩放的毫米波测量系统对无线通道进行建模和验证。

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摘要

The design and fabrication of a W-band coherent transmission measurement system for measuring characteristics of wireless channels under laboratory conditions is presented as an alternate approach to time consuming and expensive outdoor measurements. The signal frequency of the transmission system is chosen to be much higher than most commercial and military wireless systems so that the size of the scatterers can be made sufficiently small. Frequency scaling from the L-band to the W-band allows for size reduction (scaling) of a city block down to two orders of magnitude. First the overall system concept based on a very sensitive stepped frequency coherent transceiver system is introduced and the specifications of each system block are presented. For miniaturization the W-band up- and down-converter probes are designed monolithically. All microwave and millimeter-wave system components are fabricated, tested individually and then incorporated into the scaled measurement system. The overall system performance in terms of system dynamic range, noise floor, minimum detectable signal, and system calibration are also determined and reported. It is shown that with this system a signal as low as -125 dBm, and a maximum pathloss of 100 dB can be measured accurately. Delay profile resolution of 0.5 ns corresponding to 2 GHz system bandwidth can also be measured at W-band.; A reconfigurable scaled urban environment is also made using a precision 3-D printer machine developed by Z-Core. Building materials are made up of plaster and glue whose dielectric properties at W-band are measured using a wideband coherent free-space transmission measurement method. The system developed in this research is of its first kind with significant experimental capabilities for characterization and validation of wireless systems.; A physics based site-specific channel model using a 3-D ray-tracing algorithm is also introduced. The model is used to analyze wave propagation in complex urban and suburban environments. The application of this simulation tool for through wall imaging using a time reversal method is also demonstrated. This model is also validated using the scaled measurements system for a variety of urban scenarios. Excellent agreement between simulation and measurements indicates the high accuracy of both the measurement system and the ray-tracing simulation model.
机译:介绍了一种用于在实验室条件下测量无线信道特性的W波段相干传输测量系统的设计和制造,这是一种耗时且昂贵的户外测量方法。选择传输系统的信号频率要比大多数商业和军事无线系统高得多,以便可以使散射体的尺寸足够小。从L波段到W波段的频率缩放可将城市街区的尺寸减小(缩小)到两个数量级。首先,介绍了基于非常敏感的步进频率相干收发器系统的整个系统概念,并介绍了每个系统模块的规格。为了实现小型化,W波段上变频器和下变频器探头采用单片设计。所有的微波和毫米波系统组件都经过制造,单独测试,然后合并到比例测量系统中。还确定并报告了系统的整体性能,包括系统动态范围,本底噪声,最小可检测信号和系统校准。结果表明,使用该系统,可以精确测量低至-125 dBm的信号,并且最大路径损耗为100 dB。也可以在W波段上测量与2 GHz系统带宽相对应的0.5 ns延迟分布分辨率。还使用Z-Core开发的精密3-D打印机制作了可重构的缩放城市环境。建筑材料由灰泥和胶水组成,它们的W波段介电特性使用宽带相干自由空间透射测量方法进行测量。本研究开发的系统是第一类,具有用于表征和验证无线系统的重要实验能力。还介绍了使用3-D射线跟踪算法的基于物理的特定于站点的通道模型。该模型用于分析复杂的城市和郊区环境中的波传播。还演示了该仿真工具在使用时间反转方法进行穿墙成像中的应用。该模型还使用比例尺测量系统针对各种城市场景进行了验证。模拟和测量之间的出色一致性表明测量系统和光线跟踪模拟模型都具有很高的精度。

著录项

  • 作者

    Aryanfar, Farshid.;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 128 p.
  • 总页数 128
  • 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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