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A new method of hydrophone calibration using the KZK time domain finite difference algorithm.

机译:一种使用KZK时域有限差分算法的水听器校准新方法。

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摘要

This work describes a novel absolute calibration technique that is capable to provide the frequency response of hydrophones over a wide, 100 MHz bandwidth. This bandwidth is significantly larger than the one in which the hydrophones are routinely calibrated at present. The developed technique takes into account nonlinear propagation phenomena. More specifically, the hydrophone calibration was determined by comparing the differences between the experimental results and those obtained from modeling finite amplitude wave propagation. The simulation model was derived from the time domain algorithm that solves the nonlinear KZK equation of acoustic wave propagation, and accounts for the effects of medium nonlinearity, diffraction and absorption. Focused circular transducers were used as acoustic sources in all the experiments and simulations. The KZK time-domain algorithm was initially validated using the known hydrophone calibration in the frequency range from 2 to 20 MHz. The calibration of several hydrophones was then carried out from 5 MHz to 100 MHz. The calibration results were independently validated and the overall uncertainty determined. The results were typically within the measurement uncertainty of the independent calibrations from 5 to 40 MHz. These calibrations provided the information needed to develop a reliable method that allows a rapid determination of the ultrasound hydrophone compliance with the specification recommendations. The recommendations were published by the American Institute of Ultrasound in Medicine and the National Electronic Manufacturer's Association (AIUM/NEMA) to improve assessment of potential bioeffects by calculation of the Mechanical (MI) and Thermal Indices (TI). The developed technique is also capable to provide phase information of the hydrophone in the considered frequency range. Combined phase and amplitude spectrum information was used to remove the influence of hydrophone's frequency response on the measured acoustic field. The results of the measurements obtained using limited bandwidth hydrophones, i.e. hydrophones that did not comply with the newest AIUM/NEMA requirements, were successfully improved. Thus, the developed technique can provide acoustic pressure-time waveforms which are virtually unbiased by the hydrophone response. Fundamental limitations of the technique were also determined and are discussed together with the suggestions for further refining of the developed approach.
机译:这项工作描述了一种新颖的绝对校准技术,该技术能够在100 MHz宽带宽上提供水听器的频率响应。该带宽明显大于目前对水听器进行常规校准的带宽。所开发的技术考虑了非线性传播现象。更具体地说,通过比较实验结果与通过模拟有限幅度波传播获得的结果之间的差异来确定水听器校准。该仿真模型是从时域算法导出的,该算法求解了声波传播的非线性KZK方程,并考虑了介质非线性,衍射和吸收的影响。在所有实验和模拟中,聚焦的圆形换能器均用作声源。 KZK时域算法最初是使用已知的水听器校准在2至20 MHz的频率范围内进行验证的。然后在5 MHz至100 MHz范围内对几个水听器进行校准。校准结果得到独立验证,并确定了总体不确定度。结果通常在5至40 MHz的独立校准的测量不确定度范围内。这些校准提供了开发可靠方法所需的信息,该方法可以快速确定超声水听器是否符合规格建议。该建议由美国超声医学研究所和美国国家电子制造商协会(AIUM / NEMA)发布,以通过计算机械(MI)和热指数(TI)来改善对潜在生物效应的评估。所开发的技术还能够在所考虑的频率范围内提供水听器的相位信息。结合了相位和幅度频谱信息,以消除水听器的频率响应对测得的声场的影响。使用有限带宽的水听器,即不符合最新的AIUM / NEMA要求的水听器,获得的测量结果得到了成功的改善。因此,开发的技术可以提供声压-时间波形,该声压-时间波形实际上不受水听器响应的影响。还确定了该技术的基本局限性,并与进一步完善已开发方法的建议一起进行了讨论。

著录项

  • 作者

    Bleeker, Hendrik Johannus.;

  • 作者单位

    Drexel University.;

  • 授予单位 Drexel University.;
  • 学科 Engineering Biomedical.;Health Sciences Radiology.
  • 学位 Ph.D.
  • 年度 1998
  • 页码 154 p.
  • 总页数 154
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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