Modeling of the Influence of Sea Ice Cycle and Langmuir Circulation on the Upper Ocean Mixed Layer Depth and Freshwater Distribution at the West Antarctic Peninsula

Modeling of the Influence of Sea Ice Cycle and Langmuir Circulation on the Upper Ocean Mixed Layer Depth and Freshwater Distribution at the West Antarctic Peninsula
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DOI:
10.1002/essoar.10502066.1
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发表时间:
2020-01
期刊:
Journal of Geophysical Research: Oceans
影响因子:
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通讯作者:
Cristina Schultz;S. Doney;W. Zhang;H. Regan;P. Holland;Michael P. Meredith;S. Stammerjohn
Cristina Schultz;S. Doney;W. Zhang;H. Regan;P. Holland;Michael P. Meredith;S. Stammerjohn
中科院分区:
其他
文献类型:
--
作者:
Cristina Schultz;S. Doney;W. Zhang;H. Regan;P. Holland;Michael P. Meredith;S. Stammerjohn

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The Southern Ocean is chronically undersampled due to its remoteness, harsh environment, and sea ice cover. Ocean circulation models yield signi fi cant insight into key processes and to some extent obviate the dearth of data; however, they often underestimate surface mixed layer depth (MLD), with consequences for surface water ‐ column temperature, salinity, and nutrient concentration. In this study, a coupled circulation and sea ice model was implemented for the region adjacent to the West Antarctic Peninsula, a climatically sensitive region which has exhibited decadal trends towards higher ocean temperature, shorter sea ice season, and increasing glacial freshwater input, overlain by strong interannual variability. Hindcast simulations were conducted with different air ‐ ice drag coef fi cients and Langmuir circulation parameterizations to determine the impact of these factors on MLD. Including Langmuir circulation deepened the surface mixed layer, with the deepening being more pronounced in the shelf and slope regions. Optimal selection of an air ‐ ice drag coef fi cient also increased modeled MLD by similar amounts and had a larger impact in improving the reliability of the simulated MLD interannual variability. This study highlights the importance of sea ice volume and redistribution to correctly reproduce the physics of the underlying ocean, and the potential of appropriately parameterizing Langmuir circulation to help correct for biases towards shallow MLD in the Southern Ocean. The model also reproduces Kemper are tested Each of these parameterizations was developed for open ocean and implemented in global models. The of sea ice and a coastline in our regional model an additional challenge given the uncertainties related to the behavior of wind and surface waves in the presence of sea ice, and the different properties of waves in coastal areas. The approach described by Li and Fox ‐ Kemper (2017) parameterizes the in fl uence of LC in the entrainment of dense water from below the mixed layer. of entrainment, entrainment ice drag coef fi cient leads to large differences in the representation of seasonal and interannual sea ice variability. The CTRL simulation, which has a higher drag coef fi cient (2 × 10 − 3 ), shows a bias towards higher SIC and late sea ice retreat when compared to the observations. These biases are ampli fi ed in the simulation with low (5 × 10 − 4 ) drag coef fi cient. The difference between simulations with different drag coef fi cients is much larger during the period of sea ice retreat than during sea ice advance, suggesting that retreat is more in fl uenced by wind action. The smaller differences in SIC between models during sea ice that there are biases in the initial conditions of ocean temperature and salinity used for the model.