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首页> 外文期刊>IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control >Quantitative reconstruction of a disturbed ultrasound pressure field in a conventional hydrophone measurement
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Quantitative reconstruction of a disturbed ultrasound pressure field in a conventional hydrophone measurement

机译:常规水听器测量中超声压力场干扰的定量重建

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Among various techniques enabling absolute measurements of ultrasound pressure, light refractive tomography (LRT) is so far the only one which is noninvasive, omnidirectional, and provides time-resolved results in pascals. By exploiting all these advantages, LRT shows suitability for investigations of ultrasound pressure fields, even in the case of adjacent medium boundaries which may cause considerable sound reflections. To demonstrate the potential research possibilities offered by this technique, we apply LRT to investigating the disturbance to a pressure field caused by a hydrophone. A commercial capsule hydrophone is placed in front of an ultrasound transducer excited by 1-MHz burst signals. We reconstruct the disturbed ultrasound pressure field between the hydrophone and the transducer in both spatial and temporal dimensions. Good agreement has been achieved between the reconstructed pressure field and the prediction made by a numerical simulation. Moreover, a comparison between the results provided by LRT and hydrophone shows that multiple reflections can jeopardize the reliability of hydrophone measurement when a hydrophone is placed very close to a medium boundary (e.g., <5 mm in our case). On the contrary, LRT achieves reasonable results at all distances. Finally, as a proof of the reliability of LRT, we compare the pressure amplitudes offered by LRT and hydrophone measurements at 27 mm away from the transducer in the absence of obstacles. The comparison shows a relative difference of 7.07%.
机译:在能够绝对测量超声波压力的各种技术中,光折射层析成像(LRT)是迄今为止唯一的一种非侵入性,全方向性技术,并且能够以帕斯卡形式提供时间分辨的结果。通过利用所有这些优点,即使在可能引起相当大的声反射的相邻介质边界的情况下,LRT也适用于研究超声压力场。为了演示该技术提供的潜在研究可能性,我们将LRT应用于调查对水听器造成的压力场的干扰。将商用胶囊水听器放在由1 MHz突发信号激发的超声换能器的前面。我们在空间和时间维度上重建水听器和换能器之间的超声压力场。在重建的压力场和数值模拟的预测之间已经取得了很好的一致性。此外,LRT和水听器提供的结果之间的比较表明,当水听器放置在非常接近中等边界(例如,在我们的情况下,小于5毫米)时,多次反射会损害水听器的测量可靠性。相反,轻轨在所有距离上都能取得合理的结果。最后,作为LRT可靠性的证明,我们在没有障碍物的情况下比较了LRT和水听器测量在距换能器27毫米处提供的压力幅度。比较显示相对差异为7.07%。

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