Annual evolution of the ice-ocean interaction beneath landfast ice in PrydzBay, East Antarctica

被引:2
|
作者
Hu, Haihan [1 ,2 ]
Zhao, Jiechen [3 ]
Heil, Petra [5 ]
Qin, Zhiliang [3 ,4 ]
Ma, Jingkai [6 ]
Hui, Fengming [1 ,2 ]
Cheng, Xiao [1 ,2 ]
机构
[1] Sun Yat sen Univ, Sch Geospatial Engn & Sci, Southern Marine Sci & Engn Guangdong Lab, Zhuhai 519082, Peoples R China
[2] Sun Yat sen Univ, Key Lab Comprehens Observat Polar Environm, Minist Educ, Zhuhai 519082, Peoples R China
[3] Harbin Engn Univ, Qingdao Innovat & Dev Base Ctr, Qingdao 266500, Peoples R China
[4] Univ Harbin Engn, Coll Underwater Acoust Engn, Harbin 150001, Peoples R China
[5] Australia Antarctic Div & Australian Antarctic Pr, Private Bag 80, Hobart, Tas 7001, Australia
[6] Natl Marine Environm Forecasting Ctr, Key Lab Res Marine Hazards Forecasting, Beijing 100081, Peoples R China
来源
CRYOSPHERE | 2023年 / 17卷 / 06期
基金
中国国家自然科学基金;
关键词
VERTICAL HEAT-FLUX; SEA-ICE; THICKNESS; GROWTH; MODEL; VARIABILITY; CYCLE; DRIFT; BUOY; BAY;
D O I
10.5194/tc-17-2231-2023
中图分类号
P9 [自然地理学];
学科分类号
0705 ; 070501 ;
摘要
High-frequency observations of the ice-ocean interaction and high-precision estimation of the ice-ocean heat exchange are critical to understanding the thermodynamics of the landfast ice mass balance in Antarctica. To investigate the oceanic contribution to the evolution of the landfast ice, an integrated ocean observation system, including an acoustic Doppler velocimeter (ADV), conductivity-temperature-depth (CTD) sensors, and a sea ice mass balance array (SIMBA), was deployed on the landfast ice near the Chinese Zhongshan Station in Prydz Bay, East Antarctica, from April to November 2021. The CTD sensors recorded the ocean temperature and salinity. The ocean temperature experienced a rapid increase in late April, from -1.62 to the maximum of -1.30 degrees C, and then it gradually decreased to -1.75 degrees C in May and remained at this temperature until November. The seawater salinity and density exhibited similar increasing trends during April and May, with mean rates of 0.04 psu d(-1) and 0.03 kg m(-3) d(-1), respectively, which was related to the strong salt rejection caused by freezing of the landfast ice. The ocean current observed by the ADV had mean horizontal and vertical velocities of 9.5 +/- 3.9 and 0.2 +/- 0.8 cm s(-1), respectively. The domain current direction was ESE (120 degrees)-WSW (240 degrees), and the domain velocity (79 %) was 5-15 cm s(-1). The oceanic heat flux (F-w) estimated using the residual method reached a peak of 41.3 +/- 9.8 W m(-2) in April, and then it gradually decreased to a stable level of 7.8 +/- 2.9 W m(-2) from June to October. The F-w values calculated using three different bulk parameterizations exhibited similar trends with different magnitudes due to the uncertainties of the empirical friction velocity. The spectral analysis results suggest that all of the observed ocean variables exhibited a typical half-day period, indicating the strong diurnal influence of the local tidal oscillations. The large-scale sea ice distribution and ocean circulation contributed to the seasonal variations in the ocean variables, revealing the important relationship between the large-scale and local phenomena. The high-frequency and cross-seasonal observations of oceanic variables obtained in this study allow us to deeply investigate their diurnal and seasonal variations and to evaluate their influences on the landfast ice evolution.
引用
收藏
页码:2231 / 2244
页数:14
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