DocumentCode :
2915917
Title :
High-resolution operational coastal modeling for the hydrodynamics in Korea with observed data
Author :
Lim, Hak-Soo ; Kim, Chang S. ; Park, Kwang-Soon ; Baek, W.-D. ; Kim, Seonjeong ; Jang, Se Chul ; Park, J.-S. ; Chun, Insik
Author_Institution :
Korea Ocean R&D Inst., Ansan, South Korea
fYear :
2012
fDate :
21-24 May 2012
Firstpage :
1
Lastpage :
3
Abstract :
High-resolution operational oceanographic system has been developing for the coastal waters of Korea using a Regional Ocean Modeling System coupled with wave model SWAN, internally coupled sediment transport model CSTMS and externally nested water quality model CE-QUAL-ICM. The hydrodynamic variables such as sea surface elevation, currents, temperature, salinity, storm surge height, and wave information are predicted twice a day in the 72 hours base. The coastal information system which is based on web-GIS system provides the predicted results with real-time monitoring data for dissemination to the public and validation of the operational model using various visualization techniques. The surface forcing for the operation model ROMS and SWAN is derived from the predicted results of the operational meteorological model WRF or UM which forecasts atmospheric data for the East China Sea and the East Sea. The open boundary condition for the down-scaled ROMS is nested with the predicted results derived from another operational model ROMS for the Yellow Sea or global operational hybrid ocean model HYCOM which forecasts ocean circulation with data assimilation. The previous results simulated 12 hours before are used as an initial condition for the operational oceanographic system. The hydrodynamic results have been calibrated with tidal surface elevation and verified with currents observed by bottom mounted acoustic current meter ADCP or AWAC data in the coastal waters of Korea. For the validation of predicted results we use real-time monitoring data such as hydrodynamic observation monitored by remote Buoy system and ocean observatory tower and 1 hour averaged surface currents derived from HF-Radar system. The suspended solid concentration image retrieved by Geostationary Ocean Color Imager of the satellite COMS will be used for the validation of the model prediction on the suspended sediment transport for the coastal waters of Korea. This high-resolution coastal operation- l forecasting system will be used as a part of the development of Korea Operational Oceanographic System with other operational oceanographic system.
Keywords :
data assimilation; geographic information systems; ocean temperature; ocean waves; oceanographic techniques; remote sensing by radar; sea level; ADCP; AWAC; CE-QUAL-ICM; COMS satellite; CSTMS; East China Sea; East Sea; Geostationary Ocean Color Imager; HF radar system; HYCOM; Korea Operational Oceanographic System; ROMS operation model; Regional Ocean Modeling System; SWAN wave model; UM model; WRF model; Web GIS system; Yellow Sea; bottom mounted acoustic current meter; coastal hydrodynamics; data assimilation; externally nested water quality model; global operational hybrid ocean model; high resolution operational coastal modeling; high resolution operational oceanographic system; hydrodynamic variables; internally coupled sediment transport model; ocean circulation forecasts; ocean currents; ocean observatory tower; ocean temperature; open boundary condition; operational meteorological model; operational model validation; real time monitoring data; remote buoy system; sea surface elevation; storm surge height; surface forcing; tidal surface elevation; water salinity; wave information; Atmospheric modeling; Data models; Hydrodynamics; Ocean temperature; Predictive models; Sea measurements; ROMS; acoustic current meter; coastal waters; operational oceanographic system; satellite image;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
OCEANS, 2012 - Yeosu
Conference_Location :
Yeosu
Print_ISBN :
978-1-4577-2089-5
Type :
conf
DOI :
10.1109/OCEANS-Yeosu.2012.6263556
Filename :
6263556
Link To Document :
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