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Sensing resonant objects in the presence of noise and clutter using iterative, single-channel acoustic time reversal.

机译:使用迭代的单通道声学时间反转,在存在噪声和杂波的情况下感应共振对象。

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摘要

The presence of noise and coherent returns from clutter often confounds efforts to acoustically detect and identify target objects buried in inhomogeneous media. Using iterative time reversal with a single channel transducer, returns from resonant targets are enhanced, yielding convergence to a narrowband waveform characteristic of the dominant mode in a target's elastic scattering response. The procedure consists of exciting the target with a broadband acoustic pulse, sampling the return using a finite time window, reversing the signal in time, and using this reversed signal as the source waveform for the next interrogation. Scaled laboratory experiments (0.4-2 MHz) are performed employing a piston transducer and spherical targets suspended in the free field and buried in a sediment phantom. In conjunction with numerical simulations, these experiments provide an inexpensive and highly controlled means with which to examine the efficacy of the technique. Signal-to-noise enhancement of target echoes is demonstrated. The methodology reported provides a means to extract both time and frequency information for surface waves that propagate on an elastic target. Methods developed in the laboratory are then applied in medium scale (20-200 kHz) pond experiments for the detection of a steel shell buried in sandy sediment.
机译:杂波的存在和相干回波的存在常常使以声学方式检测和识别掩埋在不均匀介质中的目标物体的努力变得混乱。在单通道换能器上使用迭代时间反转,可以增强共振目标的回波,从而收敛到目标弹性散射响应中占主导地位的窄带波形特征。该过程包括用宽带声脉冲激励目标,使用有限的时间窗口对返回信号进行采样,及时反转信号并将此反转的信号用作下一次询问的源波形。使用活塞换能器和悬挂在自由场中并埋在沉积物模型中的球形靶材进行了规模化的实验室实验(0.4-2 MHz)。结合数值模拟,这些实验提供了一种廉价且高度受控的方法,可用来检查该技术的有效性。演示了目标回波的信噪比增强。报告的方法为提取在弹性目标上传播的表面波提供了时间和频率信息。然后将实验室开发的方法应用于中等规模(20-200 kHz)池塘实验中,以检测埋在沙质沉积物中的钢壳。

著录项

  • 作者

    Waters, Zachary John.;

  • 作者单位

    Boston University.;

  • 授予单位 Boston University.;
  • 学科 Engineering Mechanical.;Physics Acoustics.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 260 p.
  • 总页数 260
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;声学;
  • 关键词

  • 入库时间 2022-08-17 11:38:07

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