Airborne Remote Sensing of Wave Propagation in the Marginal Ice Zone

被引:19
|
作者
Sutherland, Peter [1 ]
Brozena, John [2 ]
Rogers, W. Erick [3 ]
Doble, Martin [4 ]
Wadhams, Peter [5 ]
机构
[1] IFREMER, LOPS, Plouzane, France
[2] Naval Res Lab, Marine Geosci Div, Washington, DC 20375 USA
[3] Naval Res Lab, Stennis Space Ctr, MS USA
[4] Polar Sci Ltd, Appin, Scotland
[5] Univ Cambridge, Dept Appl Math & Theoret Phys, Cambridge, England
关键词
surface waves; marginal ice zone; wave attenuation; wave growth rate; air-sea-ice; airborne scanning lidar; OCEAN SURFACE-WAVES; IN-SITU MEASUREMENTS; NUMBER SPECTRA; DIRECTIONAL SPECTRUM; WIND-WAVES; SEA; ATTENUATION; PANCAKE; SWELL; MODEL;
D O I
10.1029/2018JC013785
中图分类号
P7 [海洋学];
学科分类号
0707 ;
摘要
Airborne scanning lidar was used to measure the evolution of the surface wave field in the marginal ice zone (MIZ) during two separate wave events in the Beaufort Sea in October 2015. The lidar data consisted of a 2-D field of surface elevation with horizontal resolutions between 17 and 33 cm, over a swath approximately 150-220 m wide, centred on the ground track of the aircraft. Those data were used to compute directional wavenumber spectra of the surface wave field. Comparison with nearly collocated buoy data found the lidar and buoy measurements to be generally consistent. During the first event, waves traveling from open water into the ice were attenuated by the ice. The low spectral spreading and k7/4 spectral dependence of the attenuation was consistent with dissipative models that treat sea ice as a highly viscous fluid floating on a less viscous ocean. Upper-ocean eddy viscosities calculated using that model were found to be significantly lower than those from previous work. The second event was in off-ice winds and cold temperatures, allowing measurement of the wave fetch relation in ice-forming conditions. The wave growth rate was found to be slightly higher than previous measurements under unstable atmospheric conditions without ice formation. Comparison with WAVEWATCH III model output highlighted the importance of accurate ice information and fine geographic computational resolution when making predictions near the ice edge. Finally, the very short scales over which the wave field was observed to evolve in the MIZ are discussed.
引用
收藏
页码:4132 / 4152
页数:21
相关论文
共 50 条
  • [33] Direct Observations of Wave-Sea Ice Interactions in the Antarctic Marginal Ice Zone
    Wahlgren, S.
    Thomson, J.
    Biddle, L. C.
    Swart, S.
    JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2023, 128 (10)
  • [34] An elastic plate model for wave attenuation and ice floe breaking in the marginal ice zone
    Kohout, A. L.
    Meylan, M. H.
    JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2008, 113 (C9)
  • [35] Eastward propagation of the intraseasonal variability of sea ice and the atmospheric field in the marginal ice zone in the Antarctic
    Baba, K
    Wakatsuchi, M
    GEOPHYSICAL RESEARCH LETTERS, 2001, 28 (19) : 3669 - 3672
  • [36] Wave Attenuation by Sea Ice in the Arctic Marginal Ice Zone Observed by Spaceborne SAR
    Huang, Bing Qing
    Li, Xiao-Ming
    GEOPHYSICAL RESEARCH LETTERS, 2023, 50 (21)
  • [37] Concept-driven extraction of the Antarctic marginal sea ice zone from remote sensing image time series
    Zhao, Xi
    Liu, Yue
    Pang, Xiaoping
    Ji, Qing
    Stein, Alfred
    Cheng, Xiao
    Chen, Ying
    SPATIAL STATISTICS, 2022, 50
  • [38] In situ measurements of an energetic wave event in the Arctic marginal ice zone
    Collins, Clarence O., III
    Rogers, W. Erick
    Marchenko, Aleksey
    Babanin, Alexander V.
    GEOPHYSICAL RESEARCH LETTERS, 2015, 42 (06) : 1863 - 1870
  • [39] A three-dimensional model of wave attenuation in the marginal ice zone
    Bennetts, L. G.
    Peter, M. A.
    Squire, V. A.
    Meylan, M. H.
    JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2010, 115
  • [40] Marginal Ice Zone Thickness and Extent due to Wave Radiation Stress
    Sutherland, Peter
    Dumont, Dany
    JOURNAL OF PHYSICAL OCEANOGRAPHY, 2018, 48 (08) : 1885 - 1901