On improving the accuracy of the M2 barotropic tides embedded in a high-resolution global ocean circulation model

被引:32
|
作者
Ngodock, Hans E. [1 ]
Souopgui, Innocent [2 ]
Wallcraft, Alan J. [1 ]
Richman, James G. [1 ]
Shriver, Jay F. [1 ]
Arbic, Brian K. [3 ]
机构
[1] Naval Res Lab, Div Oceanog, Stennis Space Ctr, MS 39529 USA
[2] Univ So Mississippi, Dept Marine Sci, Stennis Space Ctr, MS USA
[3] Univ Michigan, Dept Earth & Environm Sci, Ann Arbor, MI 48109 USA
关键词
Barotropic tides; HYcom; State augmentation; Ensemble Kalman filter; Data assimilation; Forcing correction; TIDAL ENERGY-DISSIPATION; INTERNAL TIDES; DATA ASSIMILATION; GENERAL-CIRCULATION; ATLANTIC; PERIOD; DRAG;
D O I
10.1016/j.ocemod.2015.10.011
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
The ocean tidal velocity and elevation can be estimated concurrently with the ocean circulation by adding the astronomical tidal forcing, parameterized topographic internal wave drag, and self attraction and loading to the general circulation physics. However, the accuracy of these tidal estimates does not yet match accuracies in the best data assimilative barotropic tidal models. This paper investigates the application of an augmented state ensemble Kalman Filter (ASEnKF) to improve the accuracy of M-2 barotropic tides embedded in a 1/12.5 degrees three-dimensional ocean general circulation model. The ASEnKF is an alternative to the techniques typically used with linearized tide only models; such techniques cannot be applied to the embedded tides in a non-linear eddying circulation. An extra term, meant to correct for errors in the tide model due to imperfectly known topography and damping terms, is introduced into the tidal forcing. Ensembles of the model are created with stochastically generated forcing correction terms. The discrepancies for each ensemble member with TPXO, an existing data assimilative tide model, are computed. The ASEnKF method yields an optimal estimate of the model forcing correction terms, that minimizes resultant root mean square (RMS) tidal sea surface elevation error with respect to TPXO, as well as an estimate of the tidal elevation. The deep-water, global area-averaged RMS sea surface elevation error of the principal lunar semidiurnal tide M-2 is reduced from 4.4 cm in a best case non-assimilative solution to 2.6 cm. The largest elevation errors in both the non assimilative and ASEnKF solutions are in the North Atlantic, a highly resonant basin. Possible pathways for achieving; further reductions in the RMS error are discussed. Published by Elsevier Ltd.
引用
收藏
页码:16 / 26
页数:11
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