Remote sensing of wave-orbital velocities in the surfzone

IF 4.2 2区 工程技术 Q1 ENGINEERING, CIVIL Coastal Engineering Pub Date : 2024-11-02 DOI:10.1016/j.coastaleng.2024.104631
Tyler McCormack , Julia Hopkins , Britt Raubenheimer , Steve Elgar , Katherine L. Brodie
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Abstract

Wave-orbital velocities are estimated with particle image velocimetry (PIV) applied to rapid sequences of images of the surfzone surface obtained with a low-cost camera mounted on an amphibious tripod. Time series and spectra of the remotely sensed cross-shore wave-orbital velocities are converted to the depth of colocated acoustic Doppler velocimeters (ADVs), using linear finite depth theory. These converted velocities are similar to the velocities measured in situ (mean nRMSE for time series = 16% and for spectra = 10%). Small discrepancies between depth-attenuated surface and in situ currents may be owing to errors in the surface velocity measurements, uncertainties in the water depth, the vertical elevation of the ADVs, and the neglect of nonlinear effects when using linear finite depth theory. These results show the potential to obtain spatially dense estimates of wave velocities using optical near-field remote methods during field campaigns and continuous monitoring operations.
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冲浪区波速轨道遥感
利用安装在水陆两栖三脚架上的低成本相机获得的冲浪区表面快速图像序列,通过粒子图像测速仪(PIV)估算波轨速度。利用线性有限深度理论,将遥感跨岸波速的时间序列和光谱转换为同位声学多普勒测速仪(ADV)的深度。这些转换后的速度与现场测量的速度相似(时间序列的平均 nRMSE = 16%,频谱的平均 nRMSE = 10%)。深度衰减后的表层水流与现场水流之间的微小差异可能是由于表层流速测量误差、水深的不确定性、ADV 的垂直高度以及使用线性有限深度理论时忽略了非线性效应造成的。这些结果表明,在野外活动和连续监测行动中,利用光学近场遥感方法获得波速空间密度估算值是很有潜力的。
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来源期刊
Coastal Engineering
Coastal Engineering 工程技术-工程:大洋
CiteScore
9.20
自引率
13.60%
发文量
0
审稿时长
3.5 months
期刊介绍: Coastal Engineering is an international medium for coastal engineers and scientists. Combining practical applications with modern technological and scientific approaches, such as mathematical and numerical modelling, laboratory and field observations and experiments, it publishes fundamental studies as well as case studies on the following aspects of coastal, harbour and offshore engineering: waves, currents and sediment transport; coastal, estuarine and offshore morphology; technical and functional design of coastal and harbour structures; morphological and environmental impact of coastal, harbour and offshore structures.
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