• DocumentCode
    2916688
  • Title

    Simulation of storm surge with wave-current coupled model on unstructured grids

  • Author

    Jong-Joo Yoon ; Kwang-Soon Park ; Ki-Chun Jun ; Jae-Seol Shim

  • Author_Institution
    Climate Change & Coastal Disaster Res. Dept., Korea Ocean Res. Dev. Inst., Seoul, South Korea
  • fYear
    2012
  • fDate
    21-24 May 2012
  • Firstpage
    1
  • Lastpage
    4
  • Abstract
    Typhoon-induced storm surge, waves, and coastal inundation in the western and southern coast of Korea region are simulated using fine mesh unstructured grid model FVCOM(an unstructured-grid Finite-Volume Coastal Ocean Model) coupled to a coastal wave model SWAN. The reanalysis 10-m wind and air pressure data are produced by WRF and a relatively simple analytical wind model are used on Typhoon wind. The wave-current couple procedure includes depth dependent wave radiation stress terms, Stokes drift, vertical transfer of wave-generated pressure transfer to the mean momentum equation, wave dissipation as a source term in the turbulence kinetic energy equation, and mean current advection and refraction of wave energy. We considered the role of wave induced forces on typhoon storm surge and the role of storm surge on the nearshore wave-field. Model results show that the extent of the simulated inundation region is increased when the effects of waves are included. Waves significantly affect the storm surge, accounting up to 25% of the total surge. This simulations show the importance of the inclusion of the wave effects for the hindcast of the water levels during the storm surge.
  • Keywords
    atmospheric boundary layer; atmospheric pressure; finite volume methods; ocean waves; storms; wind; FVCOM fine mesh unstructured grid model; Finite Volume Coastal Ocean Model; SWAN coastal wave model; Stokes drift; WRF; air pressure data; analytical wind model; depth dependent wave radiation stress terms; mean current advection; mean momentum equation; southern Korean coast; storm surge simulation; turbulence kinetic energy equation; typhoon induced coastal inundation; typhoon induced storm surge; typhoon induced waves; typhoon storm surge; typhoon wind; unstructured grids; wave dissipation; wave energy refraction; wave generated vertical pressure transfer; wave induced forces; wave-current coupled model; wave-current coupled procedure; western Korean coast; wind data; Mathematical model; Numerical models; Oceans; Sea measurements; Storms; Surges; Typhoons; FVCOM; SWAN; in; numerical model; storm surge; wave-current interaction;
  • 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.2012.6263595
  • Filename
    6263595