The frequency response of acoustic Doppler current profilers: Spatiotemporal response and implications for tidal turbine site assessment

R. Guion, A. Young
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引用次数: 11

Abstract

The lifespan of a tidal turbine is strongly affected by the unsteady loading it experiences, so knowledge of the mean flow speed is not sufficient: unsteadiness must also be quantified. One of the most common turbulence measurement devices in the marine environment is the Acoustic Doppler Current Profiler (ADCP). The variance of steady velocity measurements from ADCPs has been studied in detail, but very little attention has been given to the fundamental limits of ADCPs in terms of the frequencies and lengthscales that they can capture. In this paper, it is shown that the ADCP acts as a low-pass filter to eddies and that even optimistic calculations predict significant attenuation at lengthscales up to ten times the blade chord of a typical tidal turbine. For a typical 40 m deep channel wavelengths below 3-4 m are attenuated by 90% or more. Those eddies that are not filtered out are then subject to a distortion that will either amplify or attenuate the signal depending on the precise turbulence characteristics of the site in question. While this low-pass filtering may alter some global statistics by truncating the observed spectrum, it is most damaging when data is extracted for particular frequencies, as a turbine designer may do when assessing unsteady loading and fatigue life. It is therefore recommended that high-resolution turbulence data, e.g. from a hotwire, is captured over part of the water column and that this is used to calibrate ADCP data.
声学多普勒电流谱仪的频率响应:时空响应及其对潮汐涡轮机场址评估的意义
潮汐水轮机的寿命受其所经历的非定常载荷的强烈影响,因此对平均流速的了解是不够的,非定常也必须量化。海洋环境中最常见的湍流测量设备之一是声学多普勒电流分析器(ADCP)。已经详细研究了adcp稳定速度测量的方差,但很少注意到adcp在频率和长度尺度方面可以捕获的基本限制。在本文中,表明ADCP作为涡流的低通滤波器,即使是乐观的计算也预测在长度尺度上的显著衰减可达典型潮汐涡轮机叶片弦的十倍。对于典型的40米深通道,3-4米以下的波长衰减90%或更多。那些没有被过滤掉的涡流就会受到失真的影响,这种失真会放大或减弱信号,这取决于所讨论的地点的精确湍流特性。虽然这种低通滤波可能会截断观察到的频谱,从而改变一些全局统计数据,但当提取特定频率的数据时,它是最具破坏性的,就像涡轮设计师在评估非定常载荷和疲劳寿命时所做的那样。因此,建议在部分水柱上捕获高分辨率湍流数据,例如来自热线的数据,并将其用于校准ADCP数据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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