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Acoustic proximity ranging and its applications to cavity thickness monitoring.

机译:声学接近测距及其在腔体厚度监测中的应用。

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摘要

Time-of-flight (ToF) based acoustic proximity ranging is widely used in many applications. In this dissertation, its applications to cavity thickness monitoring of a supercavitating vehicle are studied. Most of the currently available ToF based acoustic ranging systems are not directly applicable to this case due to their low measurement accuracy and low parameter update rate. New measurement schemes and the corresponding signal processing approaches need to be devised and their performance evaluated for this challenging practical problem. Based on this motivation, four proximity ranging methods, namely the phase-shift approach, the multifrequency technique, the PEARS (Parameter Estimation for Acoustic Ranging Systems) scheme, and the Multi-PEARS (Multi-echo Parameter Estimation for Acoustic Ranging Systems) algorithm, are proposed and investigated.; For the phase-shift approach, two frequencies are used and the measurements are assumed to be corrupted by colored Gaussian noise. By taking the a priori knowledge of the acoustically hard reflection into account, a new time delay estimation algorithm based on the maximum-likelihood (ML) theory is derived. It is shown that our new method outperforms the traditional method in terms of both the estimation accuracy and the robustness against data model mismatch. For the multi-frequency technique, an arbitrary number of frequencies is used. A novel time delay estimator based on the nonlinear least squares (NLS) fitting criterion is derived. To minimize the highly oscillatory cost function, an efficient two-stage estimation algorithm is proposed. Numerical examples show that for a fixed frequency interval and a fixed signal-to-noise ratio (SNR), the more frequencies used, the lower the SNR threshold and the higher the estimation accuracy that can be obtained. Inspired by the multi-frequency technique, the PEARS scheme is devised. PEARS is novel in that it is applicable to arbitrary transmitted waveforms as long as the waveform is periodic. Numerical examples and the experiments performed by using commercially available ultrasonic transducers are used to demonstrate the excellent performance of PEARS. To deal with the interference of secondary echoes observed in experiments, the Multi-PEARS algorithm is presented for the joint proximity ranging and secondary echo mitigation. Both numerical and experimental results verify that Multi-PEARS can provide very accurate distance measurements even in the presence of strong secondary echoes. Finally, ranging experiments are conducted in the air-water tunnel at different flow conditions. Experimental results show that the distance between the sensors and the air-water interface can be accurately measured by using the ranging techniques developed in this work.
机译:基于飞行时间(ToF)的声音接近范围已在许多应用中广泛使用。本文研究了其在超空泡车腔厚监测中的应用。大多数当前可用的基于ToF的声学测距系统由于其低的测量精度和低的参数更新率而不能直接应用于这种情况。需要设计新的测量方案和相应的信号处理方法,并针对这一具有挑战性的实际问题评估其性能。基于这种动机,采用了四种相距测距方法,即相移法,多频技术,PEARS(声学测距系统参数估计)方案和Multi-PEARS(声学测距系统参数多回波参数估计)算法,已提出并进行了调查。对于相移方法,使用两个频率,并且假定测量结果被有色的高斯噪声破坏。通过考虑声学硬反射的先验知识,得出了一种基于最大似然(ML)理论的新时延估计算法。结果表明,我们的新方法在估计精度和针对数据模型不匹配的鲁棒性方面均优于传统方法。对于多频技术,使用任意数量的频率。推导了一种基于非线性最小二乘拟合准则的新型时延估计器。为了最小化高度振荡的代价函数,提出了一种有效的两阶段估计算法。数值示例表明,对于固定的频率间隔和固定的信噪比(SNR),使用的频率越多,SNR阈值越低,可以获得的估计精度越高。受多频技术启发,设计了PEARS方案。 PEARS是新颖的,因为它可以应用于任意传输的波形,只要该波形是周期性的即可。数值示例和通过使用可商购的超声换能器进行的实验被用来证明PEARS的出色性能。为了处理实验中观察到的次级回波干扰,提出了Multi-PEARS算法,用于联合邻近测距和次级回波缓解。数值和实验结果均证明,即使存在强烈的二次回波,Multi-PEARS也可以提供非常精确的距离测量。最后,在不同流量条件下在气水隧道中进行了测距实验。实验结果表明,通过使用这项工作中开发的测距技术,可以准确地测量传感器与空气-水界面之间的距离。

著录项

  • 作者

    Li, Xi.;

  • 作者单位

    University of Florida.;

  • 授予单位 University of Florida.;
  • 学科 Engineering Electronics and Electrical.; Physics Acoustics.
  • 学位 Ph.D.
  • 年度 2003
  • 页码 131 p.
  • 总页数 131
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 无线电电子学、电信技术;声学;
  • 关键词

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