Flood-ebb and spring-neap variations of lateral circulation in the James River estuary

被引:11
作者
Li, Ming [1 ]
Liu, Wei [1 ]
Chant, Robert [2 ]
Valle-Levinson, Arnoldo [3 ]
机构
[1] Univ Maryland, Horn Point Lab, Ctr Environm Sci, 2020 Horn Point Rd,POB 775, Cambridge, MD 21613 USA
[2] Rutgers State Univ, Inst Marine & Coastal Sci, 71 Dudley Rd, New Brunswick, NJ 08901 USA
[3] Univ Florida, Civil & Coastal Engn Dept, POB 116580, Gainesville, FL 32611 USA
关键词
Vorticity dynamics; Lateral circulation; Estuarine dynamics; AXIAL CONVERGENCE; SKILL ASSESSMENT; STRATIFICATION; TURBULENCE; DYNAMICS; MODEL;
D O I
10.1016/j.csr.2017.09.007
中图分类号
P7 [海洋学];
学科分类号
0707 ;
摘要
Mooring observations in the James River estuary show one-cell lateral circulation that persists from spring to neap tides despite large changes in vertical stratification. The lateral circulation is twice as strong on ebb than on flood during neap tide, but shows little flood-ebb asymmetry during spring tide. A numerical model is developed to simulate the lateral circulation. It captures an observed three-fold change in stratification and reproduces the observed temporal evolution of the lateral circulation. An analysis of the streamwise vorticity equation reveals that the lateral circulation is generated by the tilting of the planetary vorticity by the along-channel flow but opposed by turbulent diffusion and lateral baroclinic forcing due to sloping isopycnals. Tilting of the vertical component of relative vorticity by the along-channel flow is insignificant. Vortex stretching is also weak in the straight segment of the estuary where mooring observations were available. During neap tide, vorticity generation is larger on ebb due to stronger vertical shear in the along-channel current, thereby leading to stronger lateral circulation on ebb. During spring tide, however, turbulent mixing reduces the shear and the flood-ebb asymmetry in the vorticity generation, resulting in little flood-ebb variations in the lateral circulation strength. Such strength is comparable between spring and neap tides because of the compensative changes in the vorticity budget: increased baroclinic forcing and decreased diffusion during neap tides versus decreased baroclinic forcing and increased diffusion during spring tides.
引用
收藏
页码:9 / 18
页数:10
相关论文
共 38 条
[1]   Mechanisms driving stratification in Delaware Bay estuary [J].
Aristizabal, Maria ;
Chant, Robert .
OCEAN DYNAMICS, 2014, 64 (11) :1615-1629
[2]  
Browne DR., 1988, NOAA Technical Report NOS OMA, V3, P84
[3]   Drivers of Residual Estuarine Circulation in Tidally Energetic Estuaries: Straight and Irrotational Channels with Parabolic Cross Section [J].
Burchard, Hans ;
Hetland, Robert D. ;
Schulz, Elisabeth ;
Schuttelaars, Henk M. .
JOURNAL OF PHYSICAL OCEANOGRAPHY, 2011, 41 (03) :548-570
[4]   Lateral circulation driven by boundary mixing and the associated transport of sediments in idealized partially mixed estuaries [J].
Chen, Shih-Nan ;
Sanford, Lawrence P. .
CONTINENTAL SHELF RESEARCH, 2009, 29 (01) :101-118
[5]   Modeling Influence of Stratification on Lateral Circulation in a Stratified Estuary [J].
Cheng, Peng ;
Wilson, Robert E. ;
Chant, Robert J. ;
Fugate, David C. ;
Flood, Roger D. .
JOURNAL OF PHYSICAL OCEANOGRAPHY, 2009, 39 (09) :2324-2337
[6]   Intratidal Dynamics of Fronts and Lateral Circulation at the Shoal-Channel Interface in a Partially Stratified Estuary [J].
Collignon, Audric G. ;
Stacey, Mark T. .
JOURNAL OF PHYSICAL OCEANOGRAPHY, 2012, 42 (05) :869-883
[7]   The Estuarine Circulation [J].
Geyer, W. Rockwell ;
MacCready, Parker .
ANNUAL REVIEW OF FLUID MECHANICS, VOL 46, 2014, 46 :175-197
[8]  
Geyer WR, 2000, J PHYS OCEANOGR, V30, P2035, DOI 10.1175/1520-0485(2000)030<2035:TDOAPM>2.0.CO
[9]  
2
[10]   Ocean forecasting in terrain-following coordinates: Formulation and skill assessment of the Regional Ocean Modeling System [J].
Haidvogel, D. B. ;
Arango, H. ;
Budgell, W. P. ;
Cornuelle, B. D. ;
Curchitser, E. ;
Di Lorenzo, E. ;
Fennel, K. ;
Geyer, W. R. ;
Hermann, A. J. ;
Lanerolle, L. ;
Levin, J. ;
McWilliams, J. C. ;
Miller, A. J. ;
Moore, A. M. ;
Powell, T. M. ;
Shchepetkin, A. F. ;
Sherwood, C. R. ;
Signell, R. P. ;
Warner, J. C. ;
Wilkin, J. .
JOURNAL OF COMPUTATIONAL PHYSICS, 2008, 227 (07) :3595-3624