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Prediction of Salinity Changes for Seawater Inflow and Rainfall Runoff in Yongwon Channel

해수유입과 강우유출 영향에 따른 용원수로의 염분도 변화 예측

  • Choo, Min Ho (Department of Environmental Engineering, Inje University) ;
  • Kim, Young Do (Department of Environmental Engineering, Inje University) ;
  • Jeong, Weon Mu (Korea Institute of Ocean Science & Technology)
  • 추민호 (인제대학교 환경공학과) ;
  • 김영도 (인제대학교 환경공학과(낙동강유역환경연구센터)) ;
  • 정원무 (한국해양과학기술원 연안개발에너지연구부)
  • Received : 2013.03.03
  • Accepted : 2014.02.10
  • Published : 2014.03.31

Abstract

In this study, EFDC (Environmental Fluid Dynamics Code) model was used to simulate the salinity distribution for sea water inflow and rainfall runoff. The flowrate was given to the boundary conditions, which can be calculated by areal-specific flowrate method from the measured flowrate of the representative outfall. The boundary condition of the water elevation can be obtained from the hourly tidal elevation. The flowrate from the outfall can be calculated using the condition of the 245 mm raifall. The simulation results showed that at Sites 1~2 and the Mangsan island (Site 4) the salinity becomes 0 ppt after the rainfall. However, the salinity is 30 ppt when there is no rainfall. Time series of the salinity changes were compared with the measured data from January 1 to December 31, 2010 at the four sites (Site 2~5) of Yongwon channel. Lower salinities are shown at the inner sites of Yongwon channel (Site 1~4) and the sites of Songjeong river (Site 7~8). The intensive investigation near the Mangsan island showed that the changes of salinity were 21.9~28.8 ppt after the rainfall of 17 mm and those of the salinity were 2.33~8.05 ppt after the cumulative rainfall of 160.5 mm. This means that the sea water circulation is blocked in Yongwon channel, and the salinity becomes lower rapidly after the heavy rain.

본 연구에서는 해수유입과 강우유출에 따른 용원수로 내의 염분도 분포를 모의하기 위해 EFDC (Environmental Fluid Dynamics Code) 모형을 이용하였다. 유량경계조건은 대표 방류구에서 유출되는 양을 모니터링하여 면적비 유량법으로 산정하였으며, 수위경계조건으로는 시간별 조위 값을 입력하였다. 강우량에 따른 염분도 모의 결과는 일 강우량 245 mm의 유출조건을 반영하였으며, 그 결과 Site 1~2 지점과 망산도 부근 방류구가 위치한 곳에서는 염분도가 0 ppt에 가까운 수치가 나타났으며, 반면 비강우시에는 30 ppt가 넘는 것으로 나타났다. 용원수로 내측지점(Site 2~5)에서의 2010년 1월 1일~12월 31일까지의 염분도 시계열 변화 모의결과와 월별 실측값을 비교하여 나타내었다. 용원수로의 지점별 염분도를 분석한 결과, 내측지점(Site 1~4)과 송정천지점(Site 7~8)에서 염분도가 낮게 나타났다. 이러한 결과를 바탕으로 망산도 부근 염분도를 집중적으로 조사한 결과, 1차 조사결과 누적강우량은 17 mm로 염분도 농도는 21.9~28.8 ppt로 측정되었으며, 2차 조사결과 누적강우 량은 160.5 mm로 염분도 농도는 2.33~8.05 ppt로 나타났다. 결과적으로 용원수로에서는 해수의 순환이 원활하게 이루어지지 않으므로, 이로 인하여 염분도의 차이가 크게 나타났으며 특히 강우시에는 염분도가 급격히 낮아지는 것으로 나타났다.

Keywords

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