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Development of ground penetrating radar receiver systems using pico-second sampling technology.

机译:使用皮秒采样技术开发探地雷达接收器系统。

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摘要

Ground penetrating radar (GPR) is a geophysical survey method that has been developed over the past thirty years for shallow, high-resolution, subsurface investigations of the Earth Structures. GPR uses high-frequency electromagnetic (EM) waves (generally 10 MHz to 1,000 MHz) to acquire subsurface information. When EM energy propagates downward the ground, it will be reflected back to the surface from boundaries of media with different dielectric constants. GPR has been proven to be an excellent tool for nondestructive evaluation and inspection of highway structures.; The objective of this dissertation is to design Giga-Flertz sampling systems for GPR applications. An introduction to GPR is given first. The operation of the sequential sampling method for pico-second sampling is described after that. Then sampling system design is divided into five parts according to the functions and the signal types of the circuit: the nano- and subnano-second pulse generator, the sampling circuit, the receiver circuit, the power supply and the amplification and attenuation circuit. In each part, circuit operation, design considerations, and circuit analysis are presented in detail. After that, the theoretical analysis of the system error and noise are derived. Based on the theoretical analysis, the possible noise sources in the system and possible methods to eliminate or reduce them are discussed. The lab test benches for debugging and testing the two kinds of sampling systems are built up and the field tests are conducted to test the performance of the system. The field test results show that these sampling systems are robust and accurate enough for the evaluation and inspection of highway structures.
机译:探地雷达(GPR)是一种地球物理勘测方法,在过去的30年中已经开发出来,用于地球结构的浅层,高分辨率,地下调查。 GPR使用高频电磁(EM)波(通常为10 MHz至1,000 MHz)来获取地下信息。当EM能量向下传播到地面时,它将从具有不同介电常数的介质边界反射回地面。事实证明,GPR是用于公路结构无损评估和检查的出色工具。本文的目的是设计用于GPR应用的Giga-Flertz采样系统。首先介绍GPR。随后描述用于皮秒采样的顺序采样方法的操作。然后根据电路的功能和信号类型将采样系统设计分为五个部分:纳秒和亚纳秒脉冲发生器,采样电路,接收器电路,电源以及放大和衰减电路。在每个部分中,都会详细介绍电路操作,设计注意事项和电路分析。然后,对系统误差和噪声进行了理论分析。基于理论分析,讨论了系统中可能的噪声源以及消除或减少噪声源的可能方法。建立了用于调试和测试这两种采样系统的实验室测试平台,并进行了现场测试以测试系统的性能。现场测试结果表明,这些采样系统具有足够的鲁棒性和准确性,可用于评估和检查公路结构。

著录项

  • 作者

    Wang, Ying.;

  • 作者单位

    University of Houston.;

  • 授予单位 University of Houston.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 148 p.
  • 总页数 148
  • 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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