自主水声记录仪的设计与应用

Ming-Hao Chiu, Chau-Chang Wang, Jin-Yuan Liu, Chia-Wei Chang
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引用次数: 8

摘要

本课题的目标是设计和制造一种低成本、可重构、便携的声学研究用自主录音系统。在商业市场上,一些现成的音频系统作为核心单元,改装成水声记录仪。一般来说,这些消费产品有一些内置的滤波器和压缩算法,使得记录的信号有一些未知的失真。这也是不可恢复的。我们的系统由四个部分组成,即PC-104单板计算机(赛扬1G), 12位a /D转换器(PCM-3718HO), 20/40 dB放大器(由华盛顿大学APL提供)和电源管理电路板。目前,数据流的吞吐量达到了69千赫。6个可扩展的A/D通道共享总带宽。开发了多线程的C语言程序,实现了对水声信号的I/O控制,对水声信号进行数字化处理,并将数据连续流式传输到硬盘。目前系统连接了两台ITC-6050C型水听器。一个水听器以零增益采样,另一个水听器以零和20db增益采样。在35.2 AH, 16 V锂电池上运行,系统可以在电量耗尽前运行约4.5小时。采用压缩空气喷嘴喷射噪声(宽带白噪声)对实验水槽中的水听器进行了标定。为了验证其性能,该系统与一个自主记录单元Bioprobe同时工作以进行比较。我们可以验证结果是否一致。并在浅海湾地区进行了现场试验。用一艘渔船(37吨,6缸柴油发动机)作为声源,以恒定的速度行驶,平行和垂直于海岸。船舶螺旋桨产生的气泡噪声在极浅水波导(5 ~ 13米)中传播。因此,这些案例显示了距离无关和距离相关场景的结果。利用船上的GPS记录仪记录了源航迹,数据处理得到的距离-频率图显示捕获了文献报道的干扰图样。借助于数值模拟,可以研究底部有耗的楔体的声传播现象。该系统与多个水听器相连接,将应用于目标探测、环境测量与监测、港口防护等方面的研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Design and Application of Autonomous Underwater Acoustic Recorder
The goal of this work is to design and fabricate a autonomous acoustic recording system which is low cost, reconfigurable and portable for acoustic research. In the commercial market, some off-the-shelf audio systems are taken as a core unit and modified into underwater acoustic logger. Generally, these consuming products have some built-in filters and compression algorithms such that the recorded signals have some unknown distortion. It is not recoverable either. Our system consists of four components, i.e., a PC-104 single-board computer (Celeron 1G), a 12-bit A/D converter (PCM-3718HO), an 20/40 dB amplifier (provided by APL, University of Washington) and power management circuit board. Currently, the throughput of data stream attains to 69 kHz. Six scalable A/D channels are available to share the total bandwidth. A C program with multiple threads is developed to control the I/O's, digitize the underwater acoustic signals and stream data to the hard disk continuously. At present, two ITC-6050C hydrophones are connected to the system. One hydrophone is sampled with zero gain,the other is sampled with zero and 20 dB gain. Running on 35.2 AH, 16 V lithium cells,the system can operate about 4.5 hours before the depletion of power. The system was tested with compressed air nozzle jetting noise (broad-band white noise) to calibrate the hydrophones in the experimental sink. In order to verify its performance, this system works with an autonomously recording unit Bioprobe simultaneously for comparison. We can verify whether the results are coincided with each other. Further, A field test was conducted in shallow bay area. A fishing boat (37 tons, 6-cylinder diesel engine) traveling at constant speed was used as the sound source, and ran both parallel and perpendicular to shore. Bubble noise generated by the ship propeller propagated in the very shallow water waveguide (5 to 13 meters).Thus, these cases show results for both range-independent and range-dependent scenarios. The source track were recorded by using a GPS recorder on the boat, data processing resulted in range-frequency plot shows that the interference pattern reported in the literature was captured. Aided by numerical simulations, it is able to investigate the phenomenon of propagation of sound for wedge with lossy bottom. This system, connected with multiple hydrophones, will be applied in the research for target detection, environmental measurement and monitor, the harbor protection, and so on.
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