DOI QR코드

DOI QR Code

2D Numerical Simulations for Shallow-water Flows over a Side Weir

측면 위어를 넘나드는 천수 흐름에 대한 2차원 수치모의

  • 황승용 (한국건설기술연구원 수자원.하천연구소)
  • Received : 2015.09.23
  • Accepted : 2015.10.12
  • Published : 2015.11.30

Abstract

It was reviewed for the 2D numerical simulations to evaluate the effects of flood control by detention basin, even if stage-discharge relationships for the side weir were not known. A 2D depth-integrated numerical model was constructed by the application of the finite volume method to the shallow water equations as a numerical method and the introduction of an approximate Riemann solver for the accurate calculation of fluxes. Results by the model were compared with those by the laboratory test for the cases of free overflow and submerged flow over a side weir between the channel and storage. The difference between simulated and measured discharge coefficients for the case of free overflow is very small. In addition, the results by simulations were in good agreement with those by experiments for the submerged flow over a side weir and its mechanism was reproduced well. Through this study the discharge coefficients of side weirs can be accurately determined by the 2D numerical model and a considerable degree of accuracy can be achieved to evaluate the effect of flood defenses by detention basins. Thus, it will be expected to apply this model practically to the plan of detention basins, the evaluation of design alternatives, or the management of the existing ones.

측면 위어의 수위-유량 관계가 알려지지 않더라도, 저류지에 의한 홍수 조절 효과를 평가할 수 있는 2차원 수치모의에 대해 검토하였다. 수치해법으로서 천수방정식에 대해 유한체적법을 적용하고, 흐름률의 정확한 계산을 위해 근사 Riemann 해법을 도입하여 수심적분 2차원 수치모형을 구성하였다. 모의 결과를 수로와 저류지에서 자유월류와 잠긴 흐름이 발생되는 실험실 실험의 결과와 비교하였다. 자유 월류 상태에서 예측된 측면 위어의 유량 계수와 실험에 의한 그것 사이의 차이는 매우 작았다. 또한, 잠긴 흐름에 대한 모의 결과도 측정 결과와 잘 일치하였으며, 그 기구가 잘 재현되었다. 이 연구를 통해 2차원 수치모형으로 측면 위어에 대한 유량 계수를 정확하게 결정할 수 있으며, 저류지에 대한 홍수 방어능력의 검토 또한 상당한 수준의 정확도로 이루어질 수 있음이 확인되었다. 따라서 저류지의 계획, 설계안의 검토, 관리를 위한 기존 저류지의 평가 등에 이 모형의 실용적인 적용이 기대된다.

Keywords

References

  1. Batten, P., Lambert, C., and Causon, D.M. (1996). "Positively conservative high-resolution convection schemes for unstructured elements." International Journal for Numerical Methods in Engineering, Vol. 39, pp. 1821- 1838. https://doi.org/10.1002/(SICI)1097-0207(19960615)39:11<1821::AID-NME929>3.0.CO;2-E
  2. Brunner, G.W. (2010). HEC-RAS, river analysis system hydraulic reference manual. Hydraulic Engineering Center, US Army Corps of Engineers.
  3. Cho, G., Rhee, D.S., and Kim, H.-J. (2014). "Numerical model application for analysis of flood level mitigation due to retention-basin." Journal of Korea Academia-Industrial Cooperation Society, Vol. 15, pp. 495-505 (in Korean). https://doi.org/10.5762/KAIS.2014.15.1.495
  4. Choi, S., and Ahn, T. (2011). "Development of riverreservoir integrated model for flood reduction capacity analysis of off-stream reservoir." Journal of Korean Society of Hazard Mitigation, Vol. 11, pp. 165-174 (in Korean). https://doi.org/10.9798/KOSHAM.2011.11.3.165
  5. Fukuoka, S., Kon, T., and Okamura, S. (2007). "Assesment of flood control effects of the Tsurumigawa river multipurpose retarding basin." Journal of Japan Society of Civil Engineers B, Vol. 63, pp. 238-248 (in Japanese).
  6. Hager, W.H. (2010). Wastewater hydraulics. Second edition, Springer.
  7. Henderson, F.M. (1966). Open channel flow. Macmillan Publishing Co., Inc.
  8. Hwang, S.-Y. (2013). "Finite-volume model for shallowwater flow over uneven bottom." Journal of Korea Water Resources Association, Vol. 46, pp. 139-153 (in Korean). https://doi.org/10.3741/JKWRA.2013.46.2.139
  9. Hwang, S.-Y., and Lee, S.H. (2011). "An application of the multi-slope MUSCL to the shallow water equations." Journal of Korea Water Resources Association, Vol. 44, pp. 819-830 (in Korean). https://doi.org/10.3741/JKWRA.2011.44.10.819
  10. Hwang, S.-Y., and Lee, S.H. (2012). "An application of the HLLL approximate Riemann solver to the shallow water equations." Journal of Korea Society of Civil Engineers, Vol. 32, pp. 21-27 (in Korean).
  11. Kim, S.H. (2013). Analysis on flood-control effect of sideweir detention basin considering the flowpattern over the weir. Mater's thesis, Myongji University (in Korean).
  12. Lee, J.H.W., Wong, K.T.M., Choi, K.W., and Arega, F. (2014). "Postoperation performance of the Tai Hang Tung storage scheme in storm events: 2D hydraulic analysis and field verification." Journal of Hydraulic Engineering, 05014001(14) (published online).
  13. Linde, T. (2002). "A practical, general-purpose, two-state HLL Riemann solver for hyperbolic conservation laws." International Journal for Numerical Methods in Fluids, Vol. 40, pp. 391-402. https://doi.org/10.1002/fld.312
  14. May, R.W.P., Bromwich, B.C., Gasowski, Y., and Rickard, C.E. (2003). Hydraulic design of side weirs. Thomas Telford.
  15. Park, T.S. (2002). "Flow characteristics of a side-weir in rectangular channel." Journal of Korea Water Resources Association, Vol. 35, pp. 251-259 (in Korean). https://doi.org/10.3741/JKWRA.2002.35.3.251
  16. Van Leer, B. (1979). "Towards the ultimate conservative difference scheme V. a second order sequel to Godunov's method." Journal of Computational Physics, Vol. 32, pp. 101-136. https://doi.org/10.1016/0021-9991(79)90145-1
  17. Van Leer, B. (2006). "Upwind and high-resolution method for compressible flow: from donor cell to residualdistribution schemes." Communications in Computational Physics, Vol. 1, pp. 192-206.
  18. Weiyan, T. (1992). Shallowwater hydrodynamics. Elsevier Science Publishers.