一种低成本的高频声波后向散射仪器校准设备

D. Lemon, M. Clarke, P. Johnston, J. Buermans, M. Taillefer
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引用次数: 0

摘要

如果要用这些数据来估计来自不同频率信号的生物量和种群,则需要对用于测量海洋中浮游动物和小鱼的高频反向散射的声学仪器进行全系统校准。在这里,我们描述了一个测试槽设备,用于校准在125 kHz至775 kHz的一个或多个频率下工作的高频窄带声纳,波束宽度在1.8到11度之间。全钢水箱为圆柱形,直径2.43米,长6.10米,可容纳28.5立方米的水。端壁上的吸波材料是粗糙的人造草坪,很容易以最低的成本获得,并在6次反射后将水箱中的高频混响降低到可以忽略不计的水平。因此,以高达10赫兹的ping率进行脉冲操作是可能的,而不会受到混响的干扰。来自目标的回声被记录在一系列ping信号中;从这些回波的平均值计算出的目标强度与已知目标强度之间的差异是对根据制造商的换能器特性和系统电子元件的台架测量计算出的标称仪器响应精度的度量,因此允许进行校准校正。还开发了一个水箱的声学传播模型,以表征放置在其中的仪器的响应并确定最佳目标放置位置。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A low-cost calibration facility for high-frequency acoustic backscatter instruments
Full-system calibration of acoustic instruments used to measure high-frequency backscatter from zooplankton and small fish in the ocean is required if the data are to be used to estimate biomass and populations from signals at different frequencies. Here we describe a test tank facility for calibrating high-frequency, narrow-band sonars operating at one or more frequencies from 125 kHz to 775 kHz and with beam-widths between 1.8 and 11 degrees. The all steel tank is cylindrical with a diameter of 2.43 metres and a length of 6.10 metres and holds 28.5 cubic metres of water. The absorbing material on the end wall is a coarse artificial turf which is easily available at minimal cost and reduces high-frequency reverberations in the tank to negligible levels after 6 reflections. Pulsed operation at pinging rates up to 10 Hz is therefore possible without interference from reverberations. Echoes from the target are recorded over a series of pings; the difference between the target strength computed from the mean of those echoes and the known target strength is a measure of the accuracy of the nominal instrument response calculated from the manufacturer's transducer characteristics and bench measurements of the system electronics, and therefore allows a calibration correction to be made. An acoustic propagation model of the tank has also been developed to characterize the response of instruments placed in it and to identify optimum target placements.
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