장방형 침전지 유입 정류벽 유공비의 지내 수리거동에 미치는 영향 연구

The Effect of Open Ratio of the Inlet Baffle on Hydraulic Behavior within a Rectangular Sedimentation Basin

  • 박노석 (한국수자원공사 K-water연구원) ;
  • 김성수 (한국수자원공사 K-water연구원) ;
  • 임성은 (한국수자원공사 K-water연구원) ;
  • 이두진 (한국수자원공사 K-water연구원) ;
  • 서인석 (한국수자원공사 K-water연구원)
  • 투고 : 2009.04.16
  • 심사 : 2009.06.12
  • 발행 : 2009.06.15

초록

The purpose of inlet baffle is to distribute the flow uniformly over the entire cross-sectional area of the sedimentation basin. The goal when designing this baffle is to achieve some head loss while keeping the velocity gradients through the ports equal to the velocity gradient in the end of the flocculator, so as to not break up the flocs. Sedimentation tank performance is strongly influenced by hydrodynamic and physical effects such as inlet design. This study was conducted to evaluate the effect of open ratio of the inlet baffle on hydraulic behavior within a rectangular sedimentation basin using CFD simulation and ADV technique. In order to verify the CFD simulation, we measured the factual velocity at 18 points in the full-scale sedimentation basin at Y water treatment plant. Good agreement was obtained between the CFD predictions and the experimentally measured data. From the simulation results of the existing basin with 7.4 % open ratio, it was investigated that extreme decrease in velocity occurred in the middle of basin. Since then, flow features was unstable. The region which the velocity decrease rapidly moved forward to the flow direction in proportion to the increase of inflow velocity. Also, it was investigated that the flow characteristic of 6.0 % open ratio was significantly different from 7.4 % open ratio at the same configuration condition. These results are a clear indication that inflow momentum and open ratio are the parameters affecting the characteristics of hydraulic patterns. The influence of these parameters on the sedimentation performance requires further study.

키워드

참고문헌

  1. S. Kawamura, (1991), Integrated Design of Water Treatment Facilities, John Wiley & Sons, Inc
  2. 박노석, 임재림, 이선주, 권순범, 민진희, (2005), 'CFD를 이용한 침전지 구조가 수리거동에 미치는 영향 평가(II)', 상하수도학회지, Vol.19, No.6, pp.758-766
  3. Matko, T., Fawcett, N., Sharp, A., and Stephenson, T. (1996) 'Recent Progress in the numerical modelling of wastewater sedimentation tanks.' Trans, IChem, 74B, pp.245-257 https://doi.org/10.1205/095758296528590
  4. Stovin V. R. and Saul A. J. (1994) 'Sedimentation in Storage Tank Structures.' Water Science and Technology 29(1-2), pp.363-372
  5. Stovin V. R. and Saul A. J. (1996) 'Efficiency Prediction for Storage Chambers Using Computational Fluid Dynamics.' Water Science and Technology 33(9), pp. 163-170 https://doi.org/10.1016/0273-1223(96)00383-6
  6. 김남일, 김대근, 유창환, 김태영 (2005), '침전지 유입부 설계를 위한 CFD 모형의 적용', 상하수도학회지, Vol.19, No.3, pp 318-322
  7. 한국상하수도협회, 상수도 시설기준