Modelling Sea Surface Temperature (SST) in the Hudson Bay Complex Using Bulk Heat Flux Parameterization: Sensitivity to Atmospheric Forcing and Model Resolution

被引:6
作者
JafariKhasragh, Shabnam [1 ]
Lukovich, Jennifer, V [1 ]
Hu, Xianmin [2 ]
Myers, Paul G. [2 ]
Sydor, Kevin [3 ]
Barber, David G. [1 ]
机构
[1] Univ Manitoba, Ctr Earth Observat Sci, Clayton H Riddell Fac Environm Earth & Resources, Winnipeg, MB, Canada
[2] Univ Alberta, Dept Earth & Atmospher Sci, Edmonton, AB, Canada
[3] Manitoba Hydro, Water Resource Engn, Winnipeg, MB, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
sea surface temperature (SST); bulk heat flux parameterization; NEMO model; atmospheric forcing; heat flux; near-surface air temperature; Hudson Bay Complex; FRESH-WATER DISCHARGE; ICE COVER; SEASONAL CYCLE; OCEAN; VARIABILITY; UNCERTAINTIES; REANALYSIS; BREAKUP; STRAIT; TRENDS;
D O I
10.1080/07055900.2019.1605974
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
Sea surface temperature (SST) from four Nucleus for European Modelling of the Ocean (NEMO) model simulations is analyzed to study the bulk flux parameterization to compute SST over the Hudson Bay Complex (HBC) for the summer months (August and September) from 2002 to 2009. The NEMO simulation was forced with two atmospheric forcing sets with different resolutions: the Coordinated Ocean-ice Reference Experiment, version 2 (COREv2), as the lower resolution and the Canadian Meteorological Centre's Global Deterministic Prediction System Reforecasts (CGRF) as the higher resolution. The CGRF forcing is also implemented in the third and fourth runs using different runoff data and different NEMO resolutions (1/12 degrees versus 1/4 degrees). Results show that all four modelled SSTs followed observed SST patterns, with regional differences in SST bias between simulations with different atmospheric forcing. The SST differences are small between simulations forced with the same atmospheric forcing but with different model resolution or runoff. This implies that the model resolution and runoff have a small effect on the simulated SST in the HBC. Moreover, to better capture the effect of near-surface temperature (T-air) on simulated SST, we conducted three analyses using the Haney flux linearization formula. Results from these assessments did not indicate any direct influence on the model-simulated SSTs by T-air. Looking at the heat flux as a signature for SST showed that both averaged spatial distribution and time series of net heat flux produced by the three CGRF forcing simulations were higher than the net heat flux generated by the CORE 2 simulation. This was generally true for all four components of the total heat flux (sensible, latent, shortwave, and longwave) individually as well. Total heat flux in summer is governed by the shortwave heat flux, with values up to 120 W m(-2) in August, and the longwave heat flux is the main contributor to the total heat flux differences. These heat flux differences lead to corresponding colder model SSTs for the CGRF runs and warmer SSTs for the CORE 2 simulations.
引用
收藏
页码:120 / 133
页数:14
相关论文
共 65 条
[1]  
[Anonymous], 2004, Technical Report TN-460+STR
[2]  
[Anonymous], 2006, OCEAN DYN, DOI DOI 10.1007/S10236-006-0082-1
[3]   An atmosphere-ocean regional climate model for the Mediterranean area: assessment of a present climate simulation [J].
Artale, Vincenzo ;
Calmanti, Sandro ;
Carillo, Adriana ;
Dell'Aquila, Alessandro ;
Herrmann, Marine ;
Pisacane, Giovanna ;
Ruti, Paolo M. ;
Sannino, Gianmaria ;
Struglia, Maria Vittoria ;
Giorgi, Filippo ;
Bi, Xunqiang ;
Pal, Jeremy S. ;
Rauscher, Sara .
CLIMATE DYNAMICS, 2010, 35 (05) :721-740
[4]  
BELJAARS ACM, 1995, Q J ROY METEOR SOC, V121, P255, DOI 10.1002/qj.49712152203
[5]   Comparison of ERA40 and NCEP/DOE near-surface data sets with other ISLSCP-II data sets [J].
Betts, Alan K. ;
Zhao, Mei ;
Dirmeyer, P. A. ;
Beljaars, A. C. M. .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2006, 111 (D22)
[6]  
Bjerknes J., 1964, Advances in geophysics, V10, P1, DOI 10.1016/S0065-2687(08)60005-9
[7]   HIGH-LATITUDE OCEAN AND SEA ICE SURFACE FLUXES: CHALLENGES FOR CLIMATE RESEARCH [J].
Bourassa, Mark A. ;
Gille, Sarah T. ;
Bitz, Cecilia ;
Carlson, David ;
Cerovecki, Ivana ;
Clayson, Carol Anne ;
Cronin, Meghan F. ;
Drennan, Will M. ;
Fairall, Chris W. ;
Hoffman, Ross N. ;
Magnusdottir, Gudrun ;
Pinker, Rachel T. ;
Renfrew, Ian A. ;
Serreze, Mark ;
Speer, Kevin ;
Talley, Lynne D. ;
Wick, Gary A. .
BULLETIN OF THE AMERICAN METEOROLOGICAL SOCIETY, 2013, 94 (03) :403-423
[8]   Climatologically Significant Effects of Some Approximations in the Bulk Parameterizations of Turbulent Air-Sea Fluxes [J].
Brodeau, Laurent ;
Barnier, Bernard ;
Gulev, Sergey K. ;
Woods, Cian .
JOURNAL OF PHYSICAL OCEANOGRAPHY, 2017, 47 (01) :5-28
[9]   An ERA40-based atmospheric forcing for global ocean circulation models [J].
Brodeau, Laurent ;
Barnier, Bernard ;
Treguier, Anne-Marie ;
Penduff, Thierry ;
Gulev, Sergei .
OCEAN MODELLING, 2010, 31 (3-4) :88-104
[10]   An Assessment of the Uncertainties in Ocean Surface Turbulent Fluxes in 11 Reanalysis, Satellite-Derived, and Combined Global Datasets [J].
Brunke, Michael A. ;
Wang, Zhuo ;
Zeng, Xubin ;
Bosilovich, Michael ;
Shie, Chung-Lin .
JOURNAL OF CLIMATE, 2011, 24 (21) :5469-5493