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Analysis of Sediment Transport in the Gaeya Open Channel by Complex Wave Field

복합 파랑장에 따른 개야수로 퇴적물이동 분석

  • Jang, Changhwan (Construction Technology Examination Division, Korean Intellectual Property Office)
  • 장창환 (특허청 건설기술심사과)
  • Received : 2021.03.12
  • Accepted : 2021.03.29
  • Published : 2021.05.31

Abstract

In order to analyze wave propagation, tidal current, and sediment transport in the vicinity of the Gaeya open channel, it was classified into before(CASE1W) and after(CASE2W) installation of various artificial structures, and the calculation results for CASE1W and CASE2W were compared. For wave propagation, the results of incident and reflected waves were derived using the SWAN numerical model, and the tidal current velocity results were derived using the FLOW2DH numerical model for tidal current. The results of the SWAN numerical model and the FLOW2DH numerical model became the input conditions for the SEDTRAN numerical model that predicts sediment transport, and the maximum bed shear stress and suspended sediment concentration distribution near the Gaeya open channel were calculated through the SEDTRAN numerical model. As a result of the calculation of the SWAN numerical model, the wave height of CASE2W was increased by 40~50 % compared to CASE1W because the incident wave was diffracted and superimposed and the reflected wave was generated by about 7 km long northen jetty. As a result of the calculation of the FLOW2DH numerical model, According to the northen breakwater, the northen jetty and Geumrando, CASE2W was calculated 10~30 % faster than CASE1W in the tidal current of the Gaeya open channel. As a result of the calculation of the SEDTRAN numerical model, the section where the maximum bed shear stress is 1.0 N/m2 or more and the suspended concentration is 80mg/L or more was widely distributed in the Gaeya open channel from the marine environment by the complex wave field(incident wave, reflected wave and tidal wave) and the installation of various artificial structures. it is believed that a sedimentation phenomenon occurred in the Gaeya open channel.

서해 개야수로 인근의 파랑전파, 해수유동, 퇴적물이동을 분석하기 위해서 각종 인공구조물 설치 전(CASE1W)과 후(CASE2W)로 분류하고, CASE1W와 CASE2W에 대한 계산결과를 비교하였다. 파랑전파에 대해서는 SWAN 수치모형을 이용하여 입사파와 반사파의 결과를 도출하였고, 해수유동에 대해서는 FLOW2DH 수치모형을 이용하여 해수유동에 따른 유속 결과를 도출하였다. SWAN 수치모형과 FLOW2DH 수치모형의 결과는 퇴적물이동을 예측하는 SEDTRAN 수치모형의 입력조건이 되어 개야수로 인근의 최대 저면전단응력과 부유사 농도분포를 계산하였다. SWAN 수치모형 계산결과, CASE2W의 경우 약 7 km 길이의 북측 도류제에 의해서 입사파가 회절 및 중첩되고, 반사파가 생성되어 개야수로 인근의 파고를 CASE1W에 비해 40~50 % 증가시켰다. FLOW2DH 수치모형 계산결과, 북방파제, 북측 도류제 및 금란도에 의해서 개야수로의 유속이 CASE1W과 대비하여 CASE2W가 10~30 % 빠르게 계산되었다. SEDTRAN 수침모형의 계산결과, 복합 파랑장(입사파, 반사파, 조석)에 따른 해양환경과 각종 인공구조물의 설치에 의해서 개야수로의 최대 저면전단응력이 1.0 N/m2 이상인 구간과 부유사농도가 80 mg/L 이상인 구간이 넓게 분포되었다는 것은 개야수로에 퇴적현상이 발생한 것이라고 판단된다.

Keywords

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