Flow Noise Calculation and Experimental Study for Hydrophones in Fluid-Filled Towed Arrays

被引:0
作者
Kunde Yang
Qiulong Yang
Peng Xiao
Xuegang Li
Rui Duan
Yuanliang Ma
机构
[1] Northwestern Polytechnical University,School of Marine Science and Technology
[2] Ministry of Industry and Information Technology,Key Laboratory of Ocean Acoustics and Sensing (Northwestern Polytechnical University)
来源
Acoustics Australia | 2017年 / 45卷
关键词
Flow noise; Towed array; Sector inverse beamforming; Spatial filter; 43.30.Nb; 43.30.Lz;
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中图分类号
学科分类号
摘要
Understanding the physical features of the flow noise for hydrophones in a fluid-filled towed array is important for designing a towed line array sonar. The flow noise of hydrophones in fluid-filled towed arrays generated by the turbulent pressure is derived by the frequency–wave number decomposition method. The results show that the flow noise increases rapidly with the towed speed and decreases with the length of the hydrophone. Meanwhile, the flow noise is closely related to the material parameters of the elastomer tube. It decreases with the attenuation factor, outside radius, and thickness of the elastomer tube. Furthermore, a spatial filter designed by the constant sector inverse-beamforming method is used for suppressing the tow-ship-radiated noise and the ambient noise from the sensor data. The analysis results of the experimental data are consistent well with the theoretical values, which indicate that the tow-ship-radiated noise and the ambient noise are suppressed effectively by the spatial filter. In addition, the correlation features of the flow noise received by the acoustic array are analyzed, which is important for the sonar system design.
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页码:313 / 324
页数:11
相关论文
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