Shallow Water Dynamics in the Arabian Gulf and Gulf of Oman

Similar documents
Shallow Water Dynamics in the Arabian Gulf and Gulf of Oman

Shallow Water Dynamics in the Arabian Gulf and Gulf of Oman

Dynamics of Boundary Currents and Marginal Seas

Internal Tide Generation in the Indonesian Seas

Marginal Sea - Open Ocean Exchange

3.6 EFFECTS OF WINDS, TIDES, AND STORM SURGES ON OCEAN SURFACE WAVES IN THE JAPAN/EAST SEA

Ocean Model Development for COAMPS

Modeling the Formation and Offshore Transport of Dense Water from High-Latitude Coastal Polynyas

Upper Ocean Measurements of Water Masses and Circulation in the Japan Sea

PIPS 3.0. Pamela G. Posey NRL Code 7322 Stennis Space Center, MS Phone: Fax:

HYCOM Caspian Sea Modeling. Part I: An Overview of the Model and Coastal Upwelling. Naval Research Laboratory, Stennis Space Center, USA

Comprehensive Numerical Modeling of the Adriatic Sea

Forecasting Tides in Global HYCOM

Modeling the Impact of Extreme Events on Margin Sedimentation

Internal Waves and Mixing in the Aegean Sea

Modeling of Coastal Ocean Flow Fields

Determining the Stratification of Exchange Flows in Sea Straits

Shelf And Slope Sediment Transport In Strataform

Coupled Ocean-Atmosphere Modeling of the Coastal Zone

Models of Marginal Seas Partially Enclosed by Islands

Sediment Flux and Trapping on the Skagit Tidal Flats

Sensitivity of West Florida Shelf Simulations to Initial and Boundary Conditions Provided by HYCOM Data-Assimilative Ocean Hindcasts

Analysis of Mixing and Dynamics Associated with the Dissolution of Hurricane-Induced Cold Wakes

SW06 Shallow Water Acoustics Experiment Data Analysis

Near-Surface Dispersion and Circulation in the Marmara Sea (MARMARA)

NAVGEM Platform Support

1/12 Pacific HYCOM: The End Of A Long Simulation

Parameterizing the Effects of Upper-Ocean Large Eddies on Air-Sea Interaction

NRL Modeling in Support of ASAP MURI 2006 Experiment in the Monterey Bay

Regional Stratification and Shear of the Various Streams Feeding the Philippine Straits ESR Component

Advanced Numerical Methods for NWP Models

Understanding Near-Surface and In-cloud Turbulent Fluxes in the Coastal Stratocumulus-topped Boundary Layers

Laboratory Benchmark for Models of the Transport in the Kara Sea

Coastal Engineering Technical Note

Dynamics of Boundary Currents and Marginal Seas

Closed-form and Numerical Reverberation and Propagation: Inclusion of Convergence Effects

Abyssal Current Steering of Upper Ocean Current Pathways in an Ocean Model with High Vertical Resolution

High Resolution Surface Characterization from Marine Radar Measurements

Coastal Ocean Circulation Experiment off Senegal (COCES)

Real-Time Environmental Information Network and Analysis System (REINAS)

Satellite Observations of Surface Fronts, Currents and Winds in the Northeast South China Sea

Understanding Near-Surface and In-Cloud Turbulent Fluxes in the Coastal Stratocumulus-Topped Boundary Layers

Topographic Effects on Stratified Flows

Dynamics of Boundary Currents and Marginal Seas

Internal Waves in the Vicinity of the Kuroshio Path

Testing Turbulence Closure Models Against Oceanic Turbulence Measurements

Generation and Propagation of Internal Solitary Waves on the Continental Shelf and Slope

Predicting Tropical Cyclone Formation and Structure Change

Development of Ocean and Coastal Prediction Systems

A 1/10th Degree Global Ocean Simulation Using the Parallel Ocean Program

Super-Parameterization of Boundary Layer Roll Vortices in Tropical Cyclone Models

Energy Dissipation Studies in the South China Sea

Super-Parameterization of Boundary Layer Roll Vortices in Tropical Cyclone Models

BASIN-SCALE OCEAN PREDICTION SYSTEM Lead PI: Robert C. Rhodes, NRL 7323 Telephone: (601) Fax: (601)

Swash Zone Dynamics: Modeling and Data Analysis

Coastal Mixing and Optics

Implementation of an Ocean Acoustic Laboratory at PMRF

Modeling of Coastal Ocean Flow Fields

Scattering of Internal Gravity Waves at Finite Topography

Improvement of Mesoscale Numerical Weather Prediction For Coastal Regions of Complex Terrain FY2003

Analysis of Subsurface Velocity Data from the Arctic Ocean

Ocean Acoustics Turbulence Study

Computer Simulation of Sand Ripple Growth and Migration.

Evaluation of the effects of Boundary Conditions and Atmospheric Forcing in the SoFLA-HYCOM domain. Villy Kourafalou and Ge Peng UM/RSMAS

Flocculation, Optics and Turbulence in the Community Sediment Transport Model System: Application of OASIS Results

Nonlinear Internal Tide Generation at the Luzon Strait: Integrating Laboratory Data with Numerics and Observation

Sediment Dispersal from the Apennine Rivers

Mine Burial Studies with a Large Oscillating Water-Sediment Tunnel (LOWST)

UUV Operations to Characterize Circulation and Morphology of Tidal Flats

An Overview of Nested Regions Using HYCOM

Sea Ice Model for Marginal Ice Zone

Dynamics of Boundary Currents and Marginal Seas

Impact of Typhoons on the Western Pacific Ocean DRI: Numerical Modeling of Ocean Mixed Layer Turbulence and Entrainment at High Winds

Analysis of South China Sea Shelf and Basin Acoustic Transmission Data

DISTRIBUTION STATEMENT A. Approved for public release; distribution is unlimited.

Nonlinear Internal Waves: Test of the Inverted Echo Sounder

COASTAL MIXING AND OPTICS

FRACTAL CONCEPTS AND THE ANALYSIS OF ATMOSPHERIC PROCESSES

Using Dye to Study Lateral Mixing in the Ocean: 100 m to 1 km

INTERACTION AND REMOTE SENSING OF SURFACE WAVES AND TURBULENCE

Improved Parameterizations Of Nonlinear Four Wave Interactions For Application In Operational Wave Prediction Models

Toward a Better Understanding of Ocean-Wave-Typhoon Interactions in the Western Pacific Ocean

Mass Transport by Second Mode Internal Solitary Waves

Synthetic Aperture Radar Imagery of the Ocean Surface During the Coastal Mixing and Optics Experiment

An Observational and Modeling Study of Air-Sea Fluxes at Very High Wind Speeds

Coastal Ocean Circulation Experiment off Senegal (COCES)

Two-Dimensional Simulation of Truckee River Hydrodynamics

Report Documentation Page

Formulation and Application of Metrics for Ocean Modeling

An Examination of 3D Environmental Variability on Broadband Acoustic Propagation Near the Mid-Atlantic Bight

OBJECTIVES C C APPROACH

The Extratropical Transition of Tropical Cyclones

Weak Turbulence in Ocean Waves

Hurricane Wave Topography and Directional Wave Spectra in Near Real-Time

Characterization of Caribbean Meso-Scale Eddies

Statistical Prediction of Ocean Circulation and Trajectories

Grant Number: N IP To compare obtained theoretical results with NPAL experimental data.

Coastal Mixing. Eric A. D Asaro APL/UW 1013 NE 40 th Str, Seattle, WA phone: (206) fax: (206)

Typhoon-Ocean Interaction: The Ocean Response to Typhoons, and Its Feedback to Typhoon Intensity Synergy of Observations and Model Simulations

Bay of Bengal Surface and Thermocline and the Arabian Sea

Transcription:

Shallow Water Dynamics in the Arabian Gulf and Gulf of Oman Dr. Cheryl Ann Blain Naval Research Laboratory, Ocean Dynamics and Prediction Branch Stennis Space Center, MS 39529 phone: (228) 688-5450; fax: (228) 688-4759; e-mail: cheryl.ann.blain@nrlssc.navy.mil Award # N0001499WX30113 LONG TERM GOALS The development of a three-dimensional, high resolution nowcast/forecast system for the Arabian Gulf and Gulf of Oman which encompasses scales of 10 km or less when warranted, using the most advanced finite element (FE) coastal hydrodynamic models. The modeled dynamics are to include tidal and wind-driven flow, buoyancy forcing, surface heat flux, river inflow, and turbulent mixing processes. OBJECTIVE The primary objective is development of a circulation model for the Arabian Gulf and connecting waters that realistically predicts the complex, 3-D circulation and mixing patterns in the region over seasonal, tidal, sub-tidal, and storm event time scales. Dynamical processes to be considered include the three dominant external forcings in the region, a strong evaporative flux, seasonal wind forcing, and freshwater river discharge. Not only are realistic current fields sought but the hope is to gain understanding of the role each forcing mechanism plays in the strongly thermohaline-driven circulation. A particular emphasis will be placed on the three-dimensional currents and transport of mass, salt and heat through the Strait of Hormuz. Another aim of this study is to demonstrate the utility of the finite element approach using state-of-the-art, physically advanced, 3-D numerical models. APPROACH In working toward a nowcast/forecast predictive capability in the Arabian Gulf, two circulation models are employed. The first model, the Dartmouth College QUODDY model, represents the most physically advanced FE model to date. QUODDY is a 3-D, fully nonlinear model that includes tidal, wind-driven, and baroclinic physics, and utilizes advanced turbulence. This model is applied over seasonal and synoptic event time scales in the development of a realistic circulation climatology and in the assessment of individual forcing contributions to the overall circulation. A second model, ADCIRC, is a more probable candidate for real-time predictions and subsequent transition to operations. ADCIRC, now currently only a 3-D nonlinear simulator of tidal and wind-driven physics, is advancing to include a baroclinic component (development by Rick Luettich at UNC). Both finite element models are designed with modular dynamics in which certain mechanisms, such as heat flux, wind forcing, stratification, tides, or river inflow can be independently included or excluded from model equations. This modularity is used to examine the contributions of each component to the overall circulation dynamics. WORK COMPLETED The 3-D QUODDY model is applied successfully at the seasonal extremes, January and July, in simulations forced by seasonal hydrography, seasonal winds, and tides. For each month, the initial

Report Documentation Page Form Approved OMB No. 0704-0188 Public reporting burden for the collection of information is estimated to average 1 hour per response, including the time for reviewing instructions, searching existing data sources, gathering and maintaining the data needed, and completing and reviewing the collection of information. Send comments regarding this burden estimate or any other aspect of this collection of information, including suggestions for reducing this burden, to Washington Headquarters Services, Directorate for Information Operations and Reports, 1215 Jefferson Davis Highway, Suite 1204, Arlington VA 22202-4302. Respondents should be aware that notwithstanding any other provision of law, no person shall be subject to a penalty for failing to comply with a collection of information if it does not display a currently valid OMB control number. 1. REPORT DATE 30 SEP 1999 2. REPORT TYPE 3. DATES COVERED 00-00-1999 to 00-00-1999 4. TITLE AND SUBTITLE Shallow Water Dynamics in the Arabian Gulf and Gulf of Oman 5a. CONTRACT NUMBER 5b. GRANT NUMBER 5c. PROGRAM ELEMENT NUMBER 6. AUTHOR(S) 5d. PROJECT NUMBER 5e. TASK NUMBER 5f. WORK UNIT NUMBER 7. PERFORMING ORGANIZATION NAME(S) AND ADDRESS(ES) Naval Research Laboratory,Ocean Dynamics and Prediction Branch,Stennis Space Center,MS,39529 8. PERFORMING ORGANIZATION REPORT NUMBER 9. SPONSORING/MONITORING AGENCY NAME(S) AND ADDRESS(ES) 10. SPONSOR/MONITOR S ACRONYM(S) 12. DISTRIBUTION/AVAILABILITY STATEMENT Approved for public release; distribution unlimited 13. SUPPLEMENTARY NOTES 14. ABSTRACT 11. SPONSOR/MONITOR S REPORT NUMBER(S) 15. SUBJECT TERMS 16. SECURITY CLASSIFICATION OF: 17. LIMITATION OF ABSTRACT a. REPORT unclassified b. ABSTRACT unclassified c. THIS PAGE unclassified Same as Report (SAR) 18. NUMBER OF PAGES 5 19a. NAME OF RESPONSIBLE PERSON Standard Form 298 (Rev. 8-98) Prescribed by ANSI Std Z39-18

temperature and salinity fields prognostically evolve while subject to tidal rectification and a constant wind stress. A domain selected for the model experiments includes the Arabian Gulf, Strait of Hormuz, and places an open ocean boundary in the Gulf of Oman. Simulations over larger domains reveal numerical instabilites in the vicinity of the steep continental slope in the Gulf of Oman thus restricting computations to the shelf. The finite element mesh itself contains 17440 computational points and has resolution approaching 2 km nearshore. Bathymetry in the Arabian Gulf is taken from the DBDB2 2 minute data base (Naval Oceanographic Office, 1996); an average basin depth is approximately 50 m. Tidal forcing applied at the open is obtained from results of the Grenoble global tide model (LeProvost et al., 1994). Initial hydrography is derived from the MODAS data set (Harding et al., 1998) developed at NRL and constant values for the seasonal mean wind stress are specified from Hellerman and Rosenstein (1983). A series of barotropic, diagnostic, and prognostic solutions are used to identify contributions to the overall circulation from forcing mechanisms associated with density stratification, tides and wind. Validation is complete for tidal elevations simulated by the 2-D, barotropic ADCIRC model, running operationally at NAVOCEANO. Computed cotidal charts for the Arabian Gulf are shown in Fig. 1. RMS errors using 94 International Hydrographic Office stations range from less than 9 cm in sea surface height to less than 18 degrees in phase. Comparisons between 2-D and 3-D, barotropic velocity fields computed by the ADCIRC model are ongoing to determine if there is an operational advantage to 3-D barotropic current computations. Several efforts within the Arabian Gulf are just beginning. The first is a data assimilation effort in which each of three linear adjoint models are considered: 1) OTIS, Oregon State University, representer approach; 2) TRUXTON, Dartmouth College, least squares minimization; and 3) a similar model by Thompson, Dalhousie University. The second is an investigation into the sensitivity of Gulf circulation to the source of wind forcing. Wind products currently available are the NSCAT observational winds and the COAMPS model product produced by FNMOC. Other notable advances are: 1) delivery of the first diagnostic, baroclinic ADCIRC model for testing; 2) ongoing collaborations with PET to port the QUODDY model to multiple HPC platforms; and 3) development by Chris Naimie (Dartmouth College) of a set of Matlab and FORTRAN codes that are bundled to create a semi-automated mesh generation software. This software has already been used to create new FE meshes using raw coastline and bathymetry data in three regions worldwide in addition to the Arabian Gulf. RESULTS Computed temperature, salinity and density are strongly stratified in summer (Fig. 2). Vertical mixing within the model appears to be overly energetic, e.g. salinity, particularly during winter when waters are less stratified (not shown). Some adjustment in the vertical mixing will be required for future simulations. Partitioning of Gulf circulation in summer with respect to the three forcing mechanisms: tides, baroclinic pressure gradient, and winds, (Fig 3) is presented with respect to the depth-averaged currents. The largest contribution to circulation is the thermo-haline component. As expected flow enters through the Strait and moves up the Iranian coast. A return flow exits the Gulf along the deep channel in the central Gulf. Westerly wind forcing in summer steers currents most dramatically on the shallow Arabian shelf, pushing water out of the Gulf along the southern coast.

1. Cotidal charts for the four primary semi-diurnal and diurnal tidal constituents, M2, S2, K1, O1, in the Arabian Gulf. The model applied is ADCIRC, a 2-D, barotropic simulator that is currently operational at NAVOCEANO. IMPACT/APPLICATION Detailed knowledge and understanding of processes governing shallow water dynamics in the Arabian Gulf, Strait of Hormuz, and the Gulf of Oman address Naval needs for anticipating variability in nearshore circulation and water properties over space and time scales relevant to mine-countermine, amphibious, or special operations in this priority area. High horizontal resolution currents assist in the planning of instrumentation and tactics associated with amphibious operations as well as search and rescue efforts. Advantages of an unstructured grid discretization are evident in the placement of open ocean boundaries, localized resolution refinement, and representation of bathymetric and shoreline complexities. A study of this scope, encompassing the Arabian Gulf, Strait of Hormuz, and Gulf of Oman containing localized mesh refinements of less than 5 km, is unprecedented. TRANSITIONS Finite element meshes and ADCIRC-2DDI model simulations in the Arabian Gulf were transitioned to A. Baptista at Oregon Graduate Institute, as a test bed for a new FE mesh generator, September, 1999. RELATED PROJECTS Strong interactions exist with C. E. Naimie and D. R. Lynch (Dartmouth College) through the ONR 6.2 "Finite Element Modeling of Coastal Circulation" which is developing a comparable modeling and data assimilation capability in the Yellow Sea. ADCP and CTD observations in the St. of Hormuz are obtained from ONR funded W. B. Johns, (U. Miami). M. Reynolds (Brookhaven National Laboratory)

made available observation taken from the Mt. Mitchell experiment in. Collaborations with R. A. Luettich (U. North Carolina) are leading to advancement of the ADCIRC model to include baroclinic physics. PUBLICATIONS Blain, C. A., Modeled Three-Dimensional Circulation in a Thermohaline-Driven Marginal Sea, in Estuarine and Coastal Modeling, Proceedings of the 6th International Conference, M. L. Spaulding and A. F. Blumberg, eds., American Society of Civil Engineers, 1999, submitted. 2. Summer Hydrography: Bottom (left) and surface (right) temperature (top), salinity (middle), and density (bottom) computed by prognostic computations with wind forcing.

H r.pegeneous Tidal Residual Afl<;J~nal Component: BPG 6 6 4 ~ cm/s 2 0-2 -4-4 -4-2 0 2-4 -2 0 2 ~95tonal Component: Wind x 1 0 s Composite 6 6 4 2 0-2 -4-4 -4-2 0 2-4 -2 0 2 Figure 3. Summer Residual Circulation: Approximate partitioning of the seasonal circulation (bot. right) due to barotropic tidal rectification (top left), baroclinic processes (top right), and wind (bot. left).