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首页> 外文期刊>IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control >Correction for frequency-dependent hydrophone response to nonlinear pressure waves using complex deconvolution and rarefactional filtering: application with fiber optic hydrophones
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Correction for frequency-dependent hydrophone response to nonlinear pressure waves using complex deconvolution and rarefactional filtering: application with fiber optic hydrophones

机译:使用复解卷积和稀疏滤波校正频率相关水听器对非线性压力波的响应:光纤水听器的应用

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Nonlinear acoustic signals contain significant energy at many harmonic frequencies. For many applications, the sensitivity (frequency response) of a hydrophone will not be uniform over such a broad spectrum. In a continuation of a previous investigation involving deconvolution methodology, deconvolution (implemented in the frequency domain as an inverse filter computed from frequency-dependent hydrophone sensitivity) was investigated for improvement of accuracy and precision of nonlinear acoustic output measurements. Timedelay spectrometry was used to measure complex sensitivities for 6 fiber-optic hydrophones. The hydrophones were then used to measure a pressure wave with rich harmonic content. Spectral asymmetry between compressional and rarefactional segments was exploited to design filters used in conjunction with deconvolution. Complex deconvolution reduced mean bias (for 6 fiber-optic hydrophones) from 163% to 24% for peak compressional pressure (p), from 113% to 15% for peak rarefactional pressure (p), and from 126% to 29% for pulse intensity integral (PII). Complex deconvolution reduced mean coefficient of variation (COV) (for 6 fiber optic hydrophones) from 18% to 11% (p), 53% to 11% (p), and 20% to 16% (PII). Deconvolution based on sensitivity magnitude or the minimum phase model also resulted in significant reductions in mean bias and COV of acoustic output parameters but was less effective than direct complex deconvolution for p+ and p???. Therefore, deconvolution with appropriate filtering facilitates reliable nonlinear acoustic output measurements using hydrophones with frequency-dependent sensitivity.
机译:非线性声信号在许多谐波频率处都包含大量能量。对于许多应用,水听器的灵敏度(频率响应)在如此宽的频谱范围内将不均匀。在先前涉及反卷积方法的研究的延续中,对反卷积(在频域中实现为根据频率相关水听器灵敏度计算出的逆滤波器)进行了研究,以提高非线性声输出测量的准确性和精度。时延光谱法用于测量6台光纤水听器的复杂灵敏度。然后将水听器用于测量谐波含量丰富的压力波。利用压缩段和稀疏段之间的谱不对称来设计与反卷积结合使用的滤波器。复杂的反卷积将峰值压缩压力(p)的平均偏差(对于6个光纤水听器)从163%降低到24%,将峰值稀疏压力(p)的平均偏差从113%降低到15%,并将脉冲从126%降低到29%强度积分(PII)。复杂的反卷积将6个光纤水听器的平均变异系数(COV)从18%降低到11%(p),53%降低到11%(p)和20%到16%(PII)。基于灵敏度幅度或最小相位模型的反卷积也导致了声输出参数的平均偏差和COV的显着降低,但对p +和p ???而言,其效果不如直接复数反卷积有效。因此,通过适当的滤波解卷积有助于使用具有频率相关灵敏度的水听器进行可靠的非线性声输出测量。

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