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A novel method for determining calibration and behavior of PVDF ultrasonic hydrophone probes in the frequency range up to 100 MHz

机译:确定频率高达100 MHz的PVDF超声波水听器探头的校准和性能的新方法

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摘要

A new calibration technique for PVDF ultrasonic hydrophone probes is described. Current implementation of the technique allows determination of hydrophone frequency response between 2 and 100 MHz and is based on the comparison of theoretically predicted and experimentally determined pressure-time waveforms produced by a focused, circular source. The simulation model was derived from the time domain algorithm that solves the non linear KZK (Khokhlov-Zabolotskaya-Kuznetsov) equation describing acoustic wave propagation. The calibration technique data were experimentally verified using independent calibration procedures in the frequency range from 2 to 40 MHz using a combined time delay spectrometry and reciprocity approach or calibration data provided by the National Physical Laboratory (NPL), UK. The results of verification indicated good agreement between the results obtained using KZK and the above-mentioned independent calibration techniques from 2 to 40 MHz, with the maximum discrepancy of 18% at 30 MHz. The frequency responses obtained using different hydrophone designs, including several membrane and needle probes, are presented, and it is shown that the technique developed provides a desirable tool for independent verification of primary calibration techniques such as those based on optical interferometry. Fundamental limitations of the presented calibration method are also examined.
机译:描述了一种用于PVDF超声波水听器探头的新校准技术。该技术的当前实现方式允许确定2到100 MHz之间的水听器频率响应,并且基于对由聚焦圆形源产生的理论预测和实验确定的压力时间波形的比较。仿真模型是从时域算法导出的,该算法求解了描述声波传播的非线性KZK(Khokhlov-Zabolotskaya-Kuznetsov)方程。校准技术数据通过使用独立的校准程序在2至40 MHz的频率范围内进行了实验验证,采用了组合的时延光谱和互易性方法或英国国家物理实验室(NPL)提供的校准数据。验证结果表明,使用KZK获得的结果与上述2至40 MHz的独立校准技术之间的一致性很好,在30 MHz时最大差异为18%。介绍了使用不同水听器设计(包括几个膜和针式探头)获得的频率响应,并且表明所开发的技术为独立验证主要校准技术(例如基于光学干涉术的技术)提供了理想的工具。还检查了所提出的校准方法的基本局限性。

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