DOI QR코드

DOI QR Code

Parameter Estimation of a Distributed Hydrologic Model using Parallel PEST: Comparison of Impacts by Radar and Ground Rainfall Estimates

병렬 PEST를 이용한 분포형 수문모형의 매개변수 추정: 레이더 및 지상 강우 자료 영향 비교

  • Noh, Seong Jin (Water Resources Research Division, Water Resources and Environmental Research Department Korea Institute of Construction Technology) ;
  • Choi, Yun-Seok (Water Resources Research Division, Water Resources and Environmental Research Department Korea Institute of Construction Technology) ;
  • Choi, Cheon-Kyu (Water Resources Research Division, Water Resources and Environmental Research Department Korea Institute of Construction Technology) ;
  • Kim, Kyung-Tak (Water Resources Research Division, Water Resources and Environmental Research Department Korea Institute of Construction Technology)
  • 노성진 (한국건설기술연구원 수자원.환경연구본부 수자원연구실) ;
  • 최윤석 (한국건설기술연구원 수자원.환경연구본부 수자원연구실) ;
  • 최천규 (한국건설기술연구원 수자원.환경연구본부 수자원연구실) ;
  • 김경탁 (한국건설기술연구원 수자원.환경연구본부 수자원연구실)
  • Received : 2013.07.30
  • Accepted : 2013.09.13
  • Published : 2013.11.30

Abstract

In this study, we estimate parameters of a distributed hydrologic model, GRM (grid based rainfall-runoff model), using a model-independent parameter estimation tool, PEST. We implement auto calibration of model parameters such as initial soil moisture, multipliers of overland roughness and soil hydraulic conductivity in the Geumho River Catchment and the Gamcheon Catchment using radar rainfall estimates and ground-observed rainfall represented by Thiessen interpolation. Automatic calibration is performed by GRM-MP (multiple projects), a modified version of GRM without GUI (graphic user interface) implementation, and "Parallel PEST" to improve estimation efficiency. Although ground rainfall shows similar or higher cumulative amount compared to radar rainfall in the areal average, high spatial variation is found only in radar rainfall. In terms of accuracy of hydrologic simulations, radar rainfall is equivalent or superior to ground rainfall. In the case of radar rainfall, the estimated multiplier of soil hydraulic conductivity is lower than 1, which may be affected by high rainfall intensity of radar rainfall. Other parameters such as initial soil moisture and the multiplier of overland roughness do not show consistent trends in the calibration results. Overall, calibrated parameters show different patterns in radar and ground rainfall, which should be carefully considered in the rainfall-runoff modelling applications using radar rainfall.

본 연구에서는 범용 매개변수 최적화 모형인 PEST를 이용하여 분포형 수문모형인 GRM(grid based rainfall-runoff model) 모형의 매개변수 및 불확실성 범위를 추정하였다. 특히, 레이더 강우 및 지상 관측 강우를 각각 적용하여, 입력자료 차이가 매개변수 추정에 미치는 영향을 분석하였다. 자동 보정 모형은 GUI (graphic user interface)에 대한 접근 없이 모형구동이 가능하도록 개선된 GRM-MP (multiple projects) 버전과 병렬 PEST 버전을 결합하여 매개변수 추정에 소요되는 시간을 단축시켰다. 이를 낙동강 수계 금호강 유역과 감천 유역에 대해 적용하여, 초기 포화도, 지표면 조도계수 및 토양 투수계수의 보정계수에 대해 매개변수 최적화 및 불확실성 추정을 수행하였다. 강우자료 분석 결과, 레이더와 지상 강우의 유역평균 누적시계열은 비슷하거나 지상 강우가 조금 큰 경향을 보였으나, 공간분포에 있어서는 지상 강우에 비해 레이더 강우에서 큰 변동성이 확인되었다. 보정된 수문모의 결과는 레이더 강우 적용 시, 지상 강우에 비해 비슷하거나 더 나은 정확도를 보였다. 추정된 매개변수는 레이더 강우 적용 시, 토양 투수계수의 보정계수가 일관되게 1보다 작은 경향을 보였으며, 이는 강우강도가 강한 격자가 상당수 존재하기 때문으로 판단되었다. 초기 포화도 및 지표면 조도계수의 보정계수는 레이더 및 지상 강우에서 일정한 경향성을 보이지 않았다. 본 연구의 대상 유역 및 호우사상에 대한 PEST의 최적화 모의 결과, 동일 유역 및 호우사상에 대해서도 강우 추정 방법에 따라 서로 다른 최적 매개변수 값을 갖는 것을 알 수 있었으며, 이는 향후 레이더 강우 자료의 수문 모의 활용 시 유의해야할 점으로 판단된다.

Keywords

References

  1. Bae, D.H., Phoung, T.A., and Yoon, S.S. (2012). "A method to evaluate the radar rainfall accuracy for hydrological application." Journal of Korea Water Resources Association, KWRA, Vol. 42, No. 12, pp. 1039-1052. (in Korean with English abstract) https://doi.org/10.3741/JKWRA.2009.42.12.1039
  2. Beven, K.J., and Freer, J. (2001). "Equifinality, data assimilation, and uncertainty estimation in mechanistic modelling of complex environmental systems." J. Hydrol, Vol. 249, pp. 11-29. https://doi.org/10.1016/S0022-1694(01)00421-8
  3. Borga, M. (2002). "Accuracy of radar rainfall estimates for streamflow simulation." J. Hydrol, Vol. 267, pp. 26-39. https://doi.org/10.1016/S0022-1694(02)00137-3
  4. Bringi, V.N., and Chandrasekar, V. (2001). Polarimetric Doppler Weather Radar. Principles and Applications. Cambridge University Press, pp. 534-540.
  5. Choi, Y.S., Choi, C.K., Kim, K.T. (2012). "Development of a multi-site calibration module of distributed model -the case of GRM-." Journal of Korean Association of Geographic Information Studies, Korean Association of Geographic Information Studies, Vol. 15, No. 3, pp. 103-118. (in Korean with English abstract) https://doi.org/10.11108/kagis.2012.15.3.103
  6. Choi, Y.S., Kim, K.T., and Shim, M.P. (2010). "Discharge estimation at ungauged catchment Using distributed rainfall-runoff model." Journal ofKoreaWater Resources Association, KWRA, Vol. 43, No. 4, pp. 353-365. (in Korean with English abstract) https://doi.org/10.3741/JKWRA.2010.43.4.353
  7. Chung, G.H., Park, H.S., Sung, J.Y., and Kim, H.J. (2012). "Determination and evaluation of pptimal parameters in storage function method using SCE-UA." Journal of Korea Water Resources Association, KWRA, Vol. 45, No. 11, pp. 1169-1186. (in Korean with English abstract) https://doi.org/10.3741/JKWRA.2012.45.11.1169
  8. Collier, C.G., and Knowles, J.M. (1986). "Accuracy of rainfall estimates by radar, part III: Application for short-term flood forecasting." J. Hydrol., Vol. 83, pp. 237-249. https://doi.org/10.1016/0022-1694(86)90154-X
  9. Doherty, J. (2003). "Ground water model calibration using pilot points and regularization." Ground Water, Vol. 41, No. 2, pp. 170-177. https://doi.org/10.1111/j.1745-6584.2003.tb02580.x
  10. Doherty, J. (2009). PEST: Model-Independent Parameter Estimation. Watermark Numerical Computing, Australia.
  11. Hong, W.Y., Park, G.A., Jung, I.K., and Kim, S.J. (2010). "Development of a grid-based daily watershed runoff model and the evaluation of its applicability." Journal of Korean Society of Civil Engineers, KSCE, Vol. 30, No. 5, pp. 459-469. (in Korean with English abstract)
  12. Jeon, B.K., Lee, C.K., and Kim, Y.S. (2012). "Evaluation of rainfall measurement capability of dual polarization radar." Journal of Korean Society of Hazard Mitigation, Korean Society of Hazard Mitigation, Vol. 12, No. 2, pp. 215-224. (in Korean with English abstract) https://doi.org/10.9798/KOSHAM.2012.12.2.215
  13. Jung, I.K., Shin, H.J., Park, J.H., and Kim, S.J. (2008). "A modified grid-based kinematic wave storrm runoff model (ModKIMSTORM) (II)-Application and Analysis-." Journal of Korean Society of Civil Engineers, KSCE, Vol. 28, No. 6B, pp. 709-721. (in Korean with English abstract)
  14. Kim, B.K., Kim, B.S., and Kwon, H.H. (2009a). "Impact assessment of agricultural reservoir on streamflow simulation using semi-distributed hydrologic model." Journal of Korean Society of Civil Engineers, KSCE, Vol. 29, No. 1, pp. 11-12. (in Korean with English abstract)
  15. Kim, K.S., Han, K.Y., and Kim, G. (2009b). "Development of distributed rainfall-runoff model using multi-directional flow allocation and real-time updating algorithm(I) -theory-." Journal of Korea Water Resources Association, KWRA, Vol. 42, No. 3, pp. 247-257. (in Korean with English abstract) https://doi.org/10.3741/JKWRA.2009.42.3.247
  16. Kim, S.M., Benham, B.L., Brannan, K.M., Zeckoski, R.W., and Doherty, J. (2007a). "Comparison of hydrologic calibration of HSPF using automatic and manual methods." Water Resour. Res., Vol. 43, W01402, doi: 10.1029/2006WR004883.
  17. Kim, T.S., Jung, I.W., Koo, B.Y., and Bae, D.H. (2007b). "Optimization of tank model parameters using multi-objective genetic algorithm(I): methodology and model formulation." Journal of Korea Water Resources Association, KWRA, Vol. 40, No. 9, pp. 677-685. (in Korean with English abstract) https://doi.org/10.3741/JKWRA.2007.40.9.677
  18. Korea Institute of Construction Technology. (2011b). HyGIS-GRM User's Manual. Ministry of Education, Science and Technology. (in Korean with English abstract)
  19. Korea Institute of Construction Technology. (KICT). (2011a). Development and Application of HyGIS. Ministry of Education, Science and Technology. (in Korean with English abstract)
  20. Korea Meteorological Administration (KMA) (2011). Monthly Weather Report in July. (in Korean)
  21. Korea Meteorological Administration (2012). Monthly Weather Report in August. (in Korean) 645-653. (in Korean with English abstract)
  22. Lee, M.H., and Yoo, D.H. (2011). "Development and application of diffusion wave-based distributed runoff model." Journal of Korea Water Resources Association, KWRA, Vol. 44, No. 7, pp. 553-563. (in Korean with English abstract) https://doi.org/10.3741/JKWRA.2011.44.7.553
  23. Ministry of Land, Transportation, and Maritime Affairs (2011a). Development of Rainfall Estimation and Analysis Optimization System of the Bisl-San Rainfall Radar. (in Korean)
  24. Ministry of Land, Transportation, and Maritime Affairs (2011b). Streamflow survey report. (in Korean)
  25. Ministry of Land, Transportation, and Maritime Affairs (MLTMA) (2009). Streamflow Survey Report. (in Korean)
  26. Noh, S.J., Kim, H.J., and Jang, C.H. (2005). "Application of WEP Model to the Cheonggecheon watershed." Journal of Korea Water Resources Association, KWRA, Vol. 38, No. 8, pp. 645-653. https://doi.org/10.3741/JKWRA.2005.38.8.645
  27. Park, J.H., and Hur, Y.T. (2008). "Development of dynamic wave-based distributed model for flood discharge analysis." Journal of Korea Water Resources Association, KWRA, Vol. 41, No. 5, pp. 455-462. (in Korean with English abstract) https://doi.org/10.3741/JKWRA.2008.41.5.455
  28. Ryzhkov, A.V., Giangrande, S.E., and Schuur, T.J. (2005). "Rainfall estimation with a polarimetric prototype of WSR-88D." J. Appl. Meteo., Vol. 44, pp. 502-515. https://doi.org/10.1175/JAM2213.1
  29. Yoo, C.S., Ha, E.H., Kim, B.S., Kim, K.J., and Choi, J.H. (2008). "Sampling error of areal average rainfall due to radar partial coverage." Journal of Korea Water Resources Association, KWRA, Vol. 41, No. 5, pp. 545-558. (in Korean with English abstract) https://doi.org/10.3741/JKWRA.2008.41.5.545

Cited by

  1. Soil Related Parameters Assessment Comparing Runoff Analysis using Harmonized World Soil Database (HWSD) and Detailed Soil Map vol.58, pp.4, 2016, https://doi.org/10.5389/KSAE.2016.58.4.057
  2. Impact Assessment of Spatial Resolution of Radar Rainfall and a Distributed Hydrologic Model on Parameter Estimation vol.34, pp.5, 2014, https://doi.org/10.12652/Ksce.2014.34.5.1443
  3. Comparison of Quantitative Precipitation Estimation Algorithms using Dual Polarization Radar Measurements in Korea vol.14, pp.6, 2014, https://doi.org/10.9798/KOSHAM.2014.14.6.105
  4. Parameter estimation of P-III distribution based on GA using rejection and interpolation mechanism pp.1573-7543, 2018, https://doi.org/10.1007/s10586-018-2110-6