Observation of anomalous spectral downshifting of waves in the Okhotsk Sea Marginal Ice Zone.

Takuji Waseda, Alberto Alberello, Takehiko Nose, Takenobu Toyota, Tsubasa Kodaira, Yasushi Fujiwara
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引用次数: 9

Abstract

Waves in the Marginal Ice Zone in the Okhotsk Sea are less studied compared to the Antarctic and Arctic. In February 2020, wave observations were conducted for the first time in the Okhotsk Sea, during the observational program by Patrol Vessel Soya. A wave buoy was deployed on the ice, and in situ wave observations were made by a ship-borne stereo imaging system and Inertial Measurement Unit. Sea ice was observed visually and by aerial photographs by drone, while satellite synthetic aperture radar provided basin-wide spatial distribution. On 12 February, a swell system propagating from east northeast was detected by both the stereo imaging system and the buoy-on-ice. The wave system attenuated from 0.34 m significant wave height to 0.25 m in about 90 km, while the wave period increased from 10 s to 15-17 s. This anomalous spectral downshifting was not reproduced by numerical hindcast and by applying conventional frequency-dependent exponential attenuation to the incoming frequency spectrum. The estimated rate of spectral downshifting, defined as a ratio of momentum and energy losses, was close to that of uni-directional wave evolution accompanied by breaking dissipation: this indicates that dissipation-driven nonlinear downshifting may be at work for waves propagating in ice. This article is part of the theme issue 'Theory, modelling and observations of marginal ice zone dynamics: multidisciplinary perspectives and outlooks'.

鄂霍次克海边缘冰带波谱异常降移的观测。
与南极和北极相比,鄂霍次克海边缘冰带的波浪研究较少。2020年2月,在“大豆”号巡逻船的观测计划期间,首次在鄂霍次克海进行了波浪观测。在冰面上布设波浪浮标,利用船载立体成像系统和惯性测量装置进行现场波浪观测。通过目测和无人机航拍对海冰进行观测,卫星合成孔径雷达提供全流域海冰的空间分布。2月12日,立体成像系统和浮筒都探测到一个从东北偏东传播的涌浪系统。波系在约90 km范围内由0.34 m有效波高衰减至0.25 m,波周期由10 s增加至15 ~ 17 s。这种异常的频谱降移不能通过数值后投和对输入频谱应用常规频率相关指数衰减来再现。谱降移的估计速率(定义为动量和能量损失之比)接近单向波演化伴随破断耗散的速率,这表明耗散驱动的非线性降移可能在冰中传播的波中起作用。本文是“边缘冰带动力学的理论、建模和观测:多学科观点和展望”主题问题的一部分。
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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