图像声纳换能器指向性优化研究

赵慧1,2,马晶鑫1,王艳2,卞加聪2,李海森1

振动与冲击 ›› 2021, Vol. 40 ›› Issue (23) : 182-186.

PDF(1595 KB)
PDF(1595 KB)
振动与冲击 ›› 2021, Vol. 40 ›› Issue (23) : 182-186.
论文

图像声纳换能器指向性优化研究

  • 赵慧1,2,马晶鑫1,王艳2,卞加聪2,李海森1
作者信息 +

Directivity optimization of image sonar transducer

  • ZHAO Hui1,2, MA Jingxin1, WANG Yan2, BIAN Jiacong2, LI Haisen1
Author information +
文章历史 +

摘要

图像声纳又称为水下相机,广泛应用于水下目标探测、成像、警戒等工程应用领域,是一种重要的海军军事型号装备。换能器的指向性参数对图像声纳的观察范围和分辨率等指标起着决定性作用,改善图像声纳换能器的指向性对提升声纳图像质量有重要作用。文章利用椭圆长轴布阵的方法设计了一种低指向性起伏弧形阵,并利用声障板,通过边界参数的优化设计拓展单基元的指向性角度。仿真计算和实测数据显示弧形阵水平主波束范围内指向性起伏小于3dB ,接收阵各基元水平指向性角度均大于 120°,结果表明图像声纳换能器的指向性特性改善明显。

Abstract

Image sonar, also known as underwater camera, is widely used in engineering applications such as underwater target detection, imaging, and alert. It is an important naval military equipment. The directivity parameters of the transducer play a decisive role in the observation range and resolution of the image sonar. Improving the directivity of the image sonar transducer plays an important role in improving the quality of the sonar image. In this paper, a low-directivity undulating arc-shaped array is designed by using the elliptical long-axis array method, and the acoustic baffle is used to expand the directivity angle of a single element through the optimal design of boundary parameters. Simulation calculations and measured data show that the directivity fluctuation in the horizontal main beam range of the arc-shaped array is less than 3dB, and the horizontal directivity angle of each element of the receiving array is greater than 120°. The results show that the directivity characteristics of the image sonar transducer have been improved significantly.

关键词

图像声纳 / 弧形阵 / 宽波束 / 指向性起伏 / 宽波束基元

Key words

 imaging sonar / curved array / wide beam / directivity fluctuation / wide beam primitive

引用本文

导出引用
赵慧1,2,马晶鑫1,王艳2,卞加聪2,李海森1. 图像声纳换能器指向性优化研究[J]. 振动与冲击, 2021, 40(23): 182-186
ZHAO Hui1,2, MA Jingxin1, WANG Yan2, BIAN Jiacong2, LI Haisen1. Directivity optimization of image sonar transducer[J]. Journal of Vibration and Shock, 2021, 40(23): 182-186

参考文献

[1] REIJNIERS Jonas, KERSTENS Robin, and Steckel Jan. An Optimized Spatial Sampling Strategy for Wide-View Planar Array 3-D Sonar Sensors. [J]. IEEE Transactions on Ultrasonics Ferroelectrics and Frequency Control, 2020, 67(6):1236-1241. 
[2] IMPAGLIAZZO J M, KAY S M, CHIANG A M, et al.. Sparse array technology for 3-D sonar imaging systems. [J]. Journal of the Acoustical Society of America, 1999, 106(4):2296-2297.
[3] WEI Bo, LI Haisen, ZHOU Tian, et al. Obtaining 3D High-Resolution Underwater Acoustic Images by Synthesizing Virtual Aperture on the 2D Transducer Array of Multibeam Echo Sounder. [J]. Remote Sensing, 2019, 11(22):2615-2624.
[4] AHMAD K A, OSMAN M K, HUSSAIN Z, et al. Design and Characterization Piezoelectric Acoustic Transducer for Sonar Application[C]. 2018 8th IEEE International Conference on Control System, Computing and Engineering (ICCSCE). IEEE, Malaysia, 2018: 233-237.
[5] 陈敏, 徐利梅, 黄大贵, 等.基于MATLAB的换能器阵列指向性分析方法研究[J]. 电声技术, 2006(05):25-28.
CHEN Min, XU Limei, HUANG Dagui, et al. Research on Directivity Analysis Method of Transducer Array Based on MATLAB[J]. Electroacoustic Technology, 2006(05):25-28.
[6] 宋蕊, 冯怡斯, 张明. 新型曲面换能器阵指向性研究[J]. 压电与声光, 2015(03):398-401.
SONG Rui, FENG Yisi, ZHANG Ming. Research on the directivity of a new curved transducer array[J]. Piezoelectric & Acousto-Optic, 2015(03):398-401.
[7] 夏金东, 黄海宁, 张春华, 等. 球冠型换能器声辐射指向性分析[J]. 声学学报, 2018(4).
XIA Jindong, HUANG Haining, ZHANG Chunhua, et al. Analysis of sound radiation directivity of spherical crown transducer[J]. Acta Acoustica Sinica, 2018(4).
[8] 赵慧, 李海森, 等. 低指向性起伏弧形发射换能器阵[P]. 中国, CN201811447773.9, 2019-04-12.
ZHAO Hui, LI Haisen, et al. Low-directivity undulating arc-shaped transmitting transducer array[P]. China, CN201811447773.9, 2019-04-12.
[9]罗英, 张德银, 陈敏, 等. 阵元损坏对换能器阵指向性的影响研究[J]. 压电与声光, 2011, 33(005):757-760.
Luo Ying, Zhang Deyin, Chen Min, et al. Research on the influence of element damage on the directivity of transducer array[J]. Piezoelectric & Acousto-Optic, 2011, 033(005):757-760.
[10]赵慧, 胡建辉, 王艳, 等. 多波束测深仪换能器基阵指向性优化设计[J]. 声学与电子工程, 2018, No.130(02):45-46.
Zhao Hui, Hu Jianhui, Wang Yan, et al. Optimal design of directivity of multi-beam echo sounder transducer array[J]. Acoustics and Electronic Engineering, 2018, No.130(02):45-46.
[11] ZHAO T, SRDAN Lazendić, ZHAO Y, et al. Classification of Multibeam Sonar Image Using the Weyl Transform[C]. International Conference on Image Processing and Communications, Bydgoszcz, Poland. 2020(1062):206-213.
[12]王敏慧, 胡健辉, 王艳. 声障板对圆柱换能器轴向波束抑制技术研究[J]. 声学技术, 2019, 038(004):476-479.
WANG Minhui, HU Jianhui, and WANG Yan. Research on acoustic baffle to suppress axial beam of cylindrical transducer[J]. Acoustics Technology, 2019, 038(004):476-479.
[13] 曹宇. 利用遗传算法对声障板优化设计的研究[D]. [博士论文]. 哈尔滨工程大学, 2010.
CAO Yu. Research on optimization design of acoustic baffle using genetic algorithm[D]. [Ph.D. dissertation]. Harbin Engineering University, 2010.
[14] TAYLOR R, MANKE K, KEELE D B. Circular-Arc Line Arrays with Amplitude Shading for Constant Directivity[J]. Journal of the Audio Engineering Society, 2019, 67(6):400-413.
[15] SHUNG K K . Current and future innovations in high-frequency ultrasonic transducers and arrays[J]. Journal of the Acoustical Society of America, 2004, 115(5):2375-2375.
[16] 兰军. 圆弧阵的水平指向性和综合[J]. 声学学报, 1988, 13(04):284-290.
LAN Jun. Horizontal directivity and synthesis of circular arc array[J].  Acta Acustica, 1988, 13(04):284-290.
[17] 周福洪.水声换能器及基阵[M].北京:国防工业出版社,1984. 223-224.
ZHOU Fuhong. Underwater Transducers and arrays[M], Beijing: National defense industry press, 1984. 223-224

PDF(1595 KB)

359

Accesses

0

Citation

Detail

段落导航
相关文章

/