DOI QR코드

DOI QR Code

A Study on the Hydroclimatic Effects on the Estimation of Annual Actual Evapotranspiration Using Watershed Water Balance

유역 물수지를 이용한 연 실제증발산 산정에 미치는 수문기후 영향 연구

  • 임창수 (경기대학교 공과대학 토목공학과) ;
  • 임가희 (경기대학교 공과대학 토목공학과) ;
  • 윤세의 (경기대학교 공과대학 토목공학과)
  • Received : 2011.07.26
  • Accepted : 2011.10.17
  • Published : 2011.12.31

Abstract

The main purpose of this study is to understand the effects of hydroclimatic factors on annual actual evapotranspiration and to suggest the multiple linear regression (MLR) equations for the estimation of annual actual evapotranspiration from watershed. To accomplish this study purpose, 5 dam watersheds (Goesan dam, Seomjingang dam, Soyanggang dam, Andong dam, Hapcheon dam) were selected as study watersheds and annual actual evapotranspiration was estimated based on annual water balance analysis from each watershed. The estimated annual actual evapotranspiration from water balance analysis was used to evaluate the MLR equations. Furthermore, the possibility of the estimation of actual evapotranspiration using potential evapotranspiration equations (Penman equation, FAO P-M equation, Makkink equation, Preistley-Taylor equation, Hargreaves equation) was evaluated. It has turned out that it is not appropriate to use potential evapotranspiration for the estimation of actual evapotranspiration because the correlation between actual evapotranspiration and potential evapotranspiration is very low. The comparison of MLR equations with current actual evapotranspiration equations indicates that MLR equations can be used for the estimation of annual actual evapotranspiration. Furthermore, it has turned out that the effects of hydroclimatic factors on annual actual evapotranspiration from dam watersheds are different in each watershed; however, for all watersheds in common precipitation has turned out to be the most important climatic factor affecting on the estimation of annual actual evapotranspiration.

본 연구에서는 댐유역의 연 실제증발산량에 영향을 미치는 주요한 수문기후요소를 파악하고 유역으로부터의 연 실제증발산량 산정을 위한 다변량회귀식을 제시하고자 하였다. 이를 위하여 우리나라 5개 댐유역(괴산댐, 섬진강댐, 소양강댐, 안동댐, 합천댐)에서연 물수지분석을실시하여 연실제증발산량을 산정하였고, 수문기후자료를 이용한 다변량회귀식으로부터 산정된 증발산량과 비교 검토함으로서 다변량회귀식의 타당성을 검토하였다. 또한 잠재증발산식들을 이용한 실제증발산량 산정 가능성을 파악하기 위하여 잠재증발산식들(Penman식, FAO P-M식, Makkink식, Preistley-Taylor식, Hargreaves식)로부터 산정된 잠재증발산량과 실제증발산량의 상관성을 검토하였다. 검토 결과 실제증발산량과 잠재증발산량 사이에 상관관계가 적어서 잠재증발산량을 이용한 실제증발산량 산정방법은 적절하지 않은 것으로 나타났다. 기존에 제안된 유역 실제증발산량 산정식들과 비교를 통하여 연 실제증발산량을 산정하는데 있어서 다변량회귀식의 적용성을 확인하였다. 또한 각 댐 유역의 실제증발산량에 영향을 미치는 주요 수문기후요소는 각기 다른 것으로 나타났으나, 공통적으로 강수량이 연 실제증발산량 산정을 위한 주요 기후요소인 것으로 나타났다.

Keywords

References

  1. 김남원, 김철겸(2004). "유역 증발산 산정을 위한 Penman- Monteith 방법과 Morton CRAE 방법의 비교." 한국수자원학회 2004년도 학술발표회, 한국수자원학회, pp. 1077-1081.
  2. 박종철(2009). "환경변화가 구량천 유역의 물수지에 미치는 영향 예측." 한국지형학회지, 한국지형학회, 제16권, 제3호, pp. 113-126.
  3. 양해근(2007). "기후변화에 따른 유역의 물수지 변화." 대한지리학회지, 대한지리학회, 제42권, 제3호, pp. 405-420.
  4. 이병주, 정일원, 배덕효(2008). "기온변화가 유역물수지에 미치는 영향 분석." 한국수자원학회 2008년도 학술발표회 논문집, 한국수자원학회, pp. 1048-1052.
  5. 이상진, 김주철, 노준우(2010). "대청유역 물수지 분석을 위한 장기 유출모의." 한국환경과학회지, 한국환경과학회, 제19권, 제10호, pp. 1211-1217. https://doi.org/10.5322/JES.2010.19.10.1211
  6. Allen, R.G., Smith, M., Perrier, A., and Periira, L.S. (1994). "An update for the definition of reference evapotranspiration." ICID Bull., Vol. 43, No. 2, pp. 1-34.
  7. Allen, R.G., Pereira, L.S., Raes, D., and Smith, M. (1998). Crop evapotranspiration-guidelines for computing crop water requirements. FAO Irrigation and Drainage Paper 56, FAO.
  8. Arora, V.K. (2002). "The use of the aridity index to assess climate change effect on annual runoff." Journal of Hydrology, Vol. 265, Issue: 1-4, pp. 164-177. https://doi.org/10.1016/S0022-1694(02)00101-4
  9. Boulain, N., Cappelaere, B., Seguis, L., Favreau, G., and Gignoux, J. (2009). "Water balance and vegetation change in the Sahel: A case study at the watershed scale with an eco-hydrological model." Journal of Arid Environments, Vol. 73, No. 12, pp. 1125-1135. https://doi.org/10.1016/j.jaridenv.2009.05.008
  10. Budyko, M.I. (1958). The heat balance of the earth's surface. U.S. Dept. of Commer., Washington, D.C. 250 pp. 259
  11. Droogers, P., and Allen, R.G. (2002). "Estimating reference evapotranspiration under inaccurate data conditions." Irrigation and Drainage Systems, Vol. 16, Issue 1, pp. 33-45. https://doi.org/10.1023/A:1015508322413
  12. Fox, D.G. (1981). "Judging air quality model performance: A summary of the AMS workshop on dispersion model performance." Bull. Am. Meteorol. Soc., Vol. 62, Issue 5, pp. 599-609. https://doi.org/10.1175/1520-0477(1981)062<0599:JAQMP>2.0.CO;2
  13. Gavilan, P.D. (2002). "La adveccion de calor sensible en el Valle Medio del Guadalquivir y su influencia en la Medida y la estimacion de la evapotranspiracion." Ph.D. Thesis, Cordoba University, Spain.
  14. Hargreaves, G.H., and Samani, Z.A. (1985). "Reference crop evapotranspiration from temperature." Appl. Engr. Agric., Vol. 1, No. 1, pp. 96-99. https://doi.org/10.13031/2013.26773
  15. Im, S.J., Kim, H.J., Kim, C.G., and Jang, C.H. (2004). "A simple approach for estimating annual evapotranspiration with climate data in Korea."Water Engineering Research, Vol. 5, No. 4, pp. 185-193.
  16. Koster, R.D., and Suarez, M.J. (1999). "A simple framework for examining the interannual variability of land surface moisture fluxes." Journal of Climate, Vol. 12, Issue 7, pp. 1911-1917. https://doi.org/10.1175/1520-0442(1999)012<1911:ASFFET>2.0.CO;2
  17. Kunkel, R., and Wendland, F. (2002). "The GROWA98 model for water balance analysis in large river basinsthe river Elbe case study." Journal of Hydrology, Vol. 259, Issue 1-4, pp. 152-162. https://doi.org/10.1016/S0022-1694(01)00579-0
  18. Leopoldo, P.R., Franken, W.K., and Villa Nova, N.A. (1995). "Real evapotranspiration and transpiration through a tropical rain forest in central Amazonia as estimated by the water balance method." Forest Ecology and Management, Vol. 73, Issue 1-3, pp. 185-195. https://doi.org/10.1016/0378-1127(94)03487-H
  19. Li, L.J., Zhang, L., Wang, H., Wang, J., Yang, J.W., Jiang, D.J., Li, J.Y., and Qin, D.Y. (2007). "Assessing the impact of climate variability and human activities on streamflow from the Wuding River basin in China." Hydrological Processes, Vol. 21, Issue 25, pp. 3485- 3491. https://doi.org/10.1002/hyp.6485
  20. Liu, Q., and Yang, A. (2010). "Quantitative estimation of the impact of climate change on actual evapotranspiration in the Yellow River Basin, China." Journal of Hydrology, Vol. 395, Issue 3-4, pp. 226-234. https://doi.org/10.1016/j.jhydrol.2010.10.031
  21. Lu, J., Sun, G., McNulty, S.G., and Amatya, D.M. (2005). "A comparison of six potential evapotranspiration methods for regional use in the Southeastern United States." J. of the American Water Resources Association, Vol. 41, No. 3, pp. 621-633. https://doi.org/10.1111/j.1752-1688.2005.tb03759.x
  22. Mac Nish, R.D., Unkrich, C.L., Smythe, E., Goodrich, D.C., and Maddock III, T. (2000). "Comparison of riparian evapotranspiration estimates based on a water balance approach and sap flow measurements." Agricultural and Forest Meteorology, Vol. 105, Issue 1-3, pp. 271- 279. https://doi.org/10.1016/S0168-1923(00)00196-9
  23. Makkink, G.F. (1957). "Testing the Penman formula by means of lysimeters." J. Instit. Water Engineers, Vol. 11, pp. 277-288.
  24. McVicar, T.R., Van Niel, T.G., Li, L.T., Hutchinson, M.F., Mu, X.M., and Liu, Z.H. (2007). "Spatially distributing monthly reference evapotranspiration and pan evaporation considering topographic influences." Journal of Hydrology, Vol. 338, Issue 3-4, pp. 196-220. https://doi.org/10.1016/j.jhydrol.2007.02.018
  25. Milly, P.C.D. (1994). "Climate, soil water storage, and the average annual water balance." Water Resour. Res., Vol. 30, No. 7, pp. 2143-2156. https://doi.org/10.1029/94WR00586
  26. Ol''dekop, E.M., (1911). "On evaporation from the surface of river basins." Trans. Met. Obs. lur-evskogo, Univ. Tartu 4 in Russian.
  27. Penman, H.L. (1948). "Natural evaporatin from open water, bare soil, and grass." Proc. Roy. Soc. London, Vol. 193. No. 1032, pp. 120-146. https://doi.org/10.1098/rspa.1948.0037
  28. Pike, J.G. (1964). "The estimation of annual runoff from meteorological data in a tropical climate." Journal of Hydrology, Vol. 2, pp. 116-123. https://doi.org/10.1016/0022-1694(64)90022-8
  29. Preistley, C.H.B., and Taylor, R.J. (1972). "On the assessment of the surface heat flux and evaporation using large-scale parameters." Monthly Weather Review, Vol. 100, No. 2, pp. 81-92. https://doi.org/10.1175/1520-0493(1972)100<0081:OTAOSH>2.3.CO;2
  30. Ramirez, J.A., and Hobbins, M.T. (2005) "Observational evidence of the complementary relationship in regional evaporation lends strong support for Bouchet's hypothesis." Geophysical Research Letters, Vol. 32, L15401, doi:10.1029/2005GL023549.
  31. Schreiber, P. (1904). "Uber die Beziehungen zwischen dem Niederschlag und der Wasserfuhrung der Flusse in Mitteleuropa." Z. Meteorol., Vol. 21, No. 10, pp. 441-452.
  32. Xu, C.Y., Gong, L., Jiang, T., Chen, D., and Singh, V.P. (2006). "Analysis of spatial distribution and temporal trend of reference evapotranspiration and pan evaporation in Changjiang (Yangtze River) catchment." Journal of Hydrology, Vol. 327, Issue 1-2, pp. 81-93. https://doi.org/10.1016/j.jhydrol.2005.11.029
  33. Yoshiyuki, Y., Murugesu, S., and Taikan, O. (2008). "Investigating the roles of climate seasonality and landscape characteristics on mean annual and monthly water balances." Journal of Hydrology, Vol. 357, Issue 3-4, pp. 255-269. https://doi.org/10.1016/j.jhydrol.2008.05.010
  34. Zhang, L., Dawes, W.R., andWalker, G.R. (2001). "Response of mean annual evapotranspiration to vegetation changes at catchment scale." Water Resources Research, Vol. 37, No. 3, pp. 701-708. https://doi.org/10.1029/2000WR900325
  35. Zhang, L., Hickel, K., Dawes, W.R., Chiew, F.H.S., Western, A.W., and Briggs, P.R. (2004). "A rational function approach for estimating mean annual evapotranspiration." Water Resources Research, Vol. 40, W02502, doi:10.1029/2003WR002710.

Cited by

  1. Assessment of actual evapotranspiration using modified satellite-based priestley-taylor algorithm using MODIS products vol.49, pp.11, 2016, https://doi.org/10.3741/JKWRA.2016.49.11.903
  2. Assessment of Actual Evapotranspiration in the Hancheon Watershed, Jeju Island vol.22, pp.5, 2013, https://doi.org/10.5322/JESI.2013.22.5.533
  3. Estimation of Actual Evapotranspiration and Storage Change for the Bokahcheon Upper-middle Watershed vol.47, pp.7, 2014, https://doi.org/10.3741/JKWRA.2014.47.7.615
  4. A Study on Water Supply and Demand Prospects for Water Resources Planning vol.18, pp.7, 2018, https://doi.org/10.9798/KOSHAM.2018.18.7.589