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Characterization of antenna radiation and receiving properties in complex environments based on physical models.

机译:基于物理模型表征复杂环境中的天线辐射和接收特性。

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摘要

In this dissertation, physics-based signal processing techniques are applied to various aspects of antenna radiation and receiving problems in the presence of complex environments. The overall objective is to characterize antenna properties more effectively and relate them directly to features of the environment via physical models. According to the interaction distance, the problem is studied at four different scales: the induced current, the antenna element, the mounting platform and the propagation channel. Different models are applied at each scale to characterize the underlying physics.; First, a frequency-dependent time-of-arrival model is proposed to represent the frequency response of the induced current. The model parameters are extracted at a few computations at low frequencies and the broadband response of the current is then extrapolated with the model. Second, the mutual coupling effect in an antenna array is studied and the standard coupling matrix model is reviewed and analyzed. The applicable condition of the model is derived. The model is further extended to characterize the coupling in more complicated wire antenna arrays. Third, a point radiator model is applied to represent the radiation pattern of antenna-platform radiation. A matching pursuit algorithm is proposed to extract the model parameters. The radiation pattern of an antenna-platform system can be sparsely represented and efficiently reconstructed from the model. This model is further combined with the mutual coupling model to characterize the array responses with mounting platforms. Finally, two statistical models are derived to model the propagation channel in a complex environment. The slow fade and the direction-of-arrival statistics are characterized in a multipath channel based on measurement data in an urban environment. Simulation of the propagation channel based on the models is shown to have very similar statistical properties to the measurement.
机译:本文将基于物理的信号处理技术应用于复杂环境下天线辐射和接收问题的各个方面。总体目标是更有效地表征天线特性,并通过物理模型将它们直接与环境特征相关联。根据相互作用距离,从四个不同的角度研究该问题:感应电流,天线元件,安装平台和传播通道。在每个尺度上应用不同的模型来表征基础物理。首先,提出了一个频率相关的到达时间模型来表示感应电流的频率响应。在低频下通过几次计算就可以提取出模型参数,然后用模型外推电流的宽带响应。其次,研究了天线阵列中的互耦效应,并对标准的耦合矩阵模型进行了回顾和分析。推导了模型的适用条件。该模型被进一步扩展,以表征更复杂的有线天线阵列中的耦合。第三,应用点辐射器模型来表示天线平台辐射的辐射方向图。提出了一种匹配追踪算法来提取模型参数。可以稀疏地表示天线平台系统的辐射方向图,并从模型中有效地对其进行重构。该模型进一步与相互耦合模型结合在一起,以表征带有安装平台的阵列响应。最后,导出了两个统计模型来对复杂环境中的传播通道进行建模。慢衰落和到达方向统计信息是基于城市环境中的测量数据在多径通道中表征的。结果表明,基于模型的传播通道仿真具有与测量非常相似的统计特性。

著录项

  • 作者

    Su, Tao.;

  • 作者单位

    The University of Texas at Austin.;

  • 授予单位 The University of Texas at Austin.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2001
  • 页码 119 p.
  • 总页数 119
  • 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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