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Application of Conceptual Rainfall-Runoff Model METQ for Simulation of Daily Runoff and Water Level: The case of the Lake Burtnieks Watershed Cover

Application of Conceptual Rainfall-Runoff Model METQ for Simulation of Daily Runoff and Water Level: The case of the Lake Burtnieks Watershed

Open Access
|Aug 2008

References

  1. Abbott, M. B., Barthurst J. C., Cunge J. A., O'Connell P. E., Rasmussen J. (1986). An introduction to the European Hydrologic System—Système Hydrologique Européen "SHE". Pt. 2: Structure of physically based, distributed modelling system., 87, 61-77.
  2. Apsīte, E., Kokorīte, I., Zīverts, A., Kļaviņš, M. (2005). Pierīgas mazo upju raksturojums.Rīga, 11. lpp.
  3. Bergström, S. (1976). Development and application of a conceptual runoff model for Scandinavian catchments., No. RHO7.
  4. Bergström, S. (1991). Principles and confidence in hydrological modelling., 22, 123-136.
  5. Bergström, S. (1992). The HBV model—Its structure and applications., No. 4, 33.
  6. Bergström, S., Carlsson, B., Graham, L. P. (1996). Modelling the water balance of the Baltic Basin—preliminary results. In, Akureyri, Iceland, August (pp. 446-455).
  7. Beven, K. J. (2001).The Primer. New York: John Wiley & Sons Ltd. 360 pp.
  8. Bilaletdin, Ä., Frisk, T., Kaipainen, H., Paananen, A., Perttula, H., Klavins, M., Apsite, E., Ziverts A. (2004). Water protection project of Lake Burtnieks., Tampere, No. 670, 92.
  9. Braun, L. N., Renner, C. B. (1992). Application of conceptual runoff model in different physiographic regions of Switzerland., 37(3), 217-231.
  10. Crawford, N. H., Linsley R. K. (1966) Digital simulation in hydrology: Stanford Watershed Model IV. Technical Report No. 39, Department of Civil Engineering, Stanford University, CA.
  11. Fleming, G. (1975).New York: Elsevier. 333 pp.
  12. Golubovskis, Ē. (1993).[Problems of Hydraulics and Stability on Small Regulated Riverbeds]. Jelgava: LLU. 30 lpp.
  13. Götzinger, J., Bárdossy, A. (2007). Comparison of four regionalisation methods for a distributed hydrological model., 333, 374-384.
  14. Hughes, D. A. (1989) Estimation of the parameters of an isolated event conceptual model from physical catchment characteristics., 34(5), 539-557.
  15. Ibrahim, A. B., Cordery, I. (1995). Estimation of recharge and runoff volumes from ungauged catchments in eastern Australia., 40(4), 499-515.
  16. Merz, R., Blöschl, G. (2004). Regionalisation of catchment model parameters., 287, 95-123.
  17. Parajka, J., Merz, R., Blöschl, G. (2005). A comparison of regionalisation methods for catchment model parameters., 9, 157-171.
  18. Rodinovs, V., Kļaviņš, M. (1993). Salacas upes hidroķīmiskais raksturojums [Hydrochemical characteristics of the River Salaca]., Rīga, 51.-56. lpp. (in Latvian).
  19. Seibert, J. (1999). Regionalization of parameters for a conceptual rain-fall-runoff model., No. 98/99, 279-293.
  20. Servat, E., Dezetter, A. (1993). Rainfall-runoff modelling and water resources assessment in northwestern Ivory Coast. Tentative extension to ungauged catchments., 148, 231-248.
  21. Singh, V. P. (1995).Highlands Ranch, CO: Water Resource Publications. 1130 pp.
  22. Tidriķis, A. (1995). Burtnieks [Lake Burtnieks]. Grām.:(enciklopēdija). 5. sēj.Rīga: Preses nams, 174.-175 lpp. (in Latvian).
  23. Uhlenbrook, S., Seibert, J., Leibundgut, C., Rodhe, A. (1999). Prediction uncertainty of conceptual rainfall-runoff models caused by problems in identifying model parameters and structure., 44(5), 779-797.
  24. Zelčs, V. (1995) Burtnieka līdzenums [Lake Burtnieks Plain]. Grām.:(enciklopēdija). 5. sēj.Rīga: Preses nams, 174.-175 lpp. (in Latvian).
  25. Zelčs, V., Dreimanis, A. (1997) Morphology, Internal Structure and Genesis of the Burtnieks Drumlin Field, Northern Vidzeme, Latvia., 111(1-4), pp. 73-90.
  26. Zīverts, A., Jauja, I. (1996) Konceptuālais matemātiskais modelis METQ96 ikdienas caurplūdumu aprēķināšanai, izmantojot meteorologiskos novērojumus [Conceptual mathematical model METQ96 for the calculation of daily discharge using meteorological observations]., 6, 126-133 (in Latvian).
  27. Ziverts, A., Jauja, I. (1999) Mathematical model of hydrological processes METQ98 and its applications., 30(2), 109-128.
  28. Ziverts, A., Apsite, E. (2001) Watershed modelling of the Lake Burtnieks in the present conditions and considering the effect of climate change. In, 12-16 November 2001 (pp. 292-295). Biwako, Japan.
  29. Zīverts, A., Apsīte, E. (2001). Noteces matemātiskā modelēšana Burtnieka un Lubāna ezera sateces baseiniem [Mathematical modelling of the runoff for the Lake Burtnieks and Lake Lubāns watersheds].(Follia Geographica),, 9, 11-19 (in Latvian).
  30. Ziverts, A., Apsite, E. (2005). Simulation of daily runoff and water level for the Lake Burtnieks. In, 1-4 June (pp. 633-637). Merkuryev, Y., Zobel, R., Kerckhoffs, E. (eds.). Riga.
  31. Jansons, V., Vagstad, N., Sudars, R., Deelstra, J., Dzalbe, I., Kirsteina D. (2002). Nutrient losses from point and diffuse agricultural sources in Latvia., 1(52), 9-17.
  32. Kite, G. W., Kouwen, N. (1992). Watershed modelling using land classifications., 28(12), 3193-3200.
  33. Krams, M., Ziverts, A. (1993). Experiments of conceptual mathematical groundwater dynamics and runoff modelling in Latvia., 24, 243-262.
  34. Nash, J. E., Sutcliffe, J. V. (1970). River flow forecasting through conceptual models. Pt. IA discussion of principles., 10, 282-290.
DOI: https://doi.org/10.2478/v10046-008-0002-5 | Journal eISSN: 2255-890X (formerly 1407-009X) | Journal ISSN: 1407-009X
Language: English
Page range: 47 - 54
Published on: Aug 14, 2008
Published by: Latvian Academy of Sciences
In partnership with: Paradigm Publishing Services

© 2008 Elga Apsīte, Ansis Zīverts, Anda Bakute, published by Latvian Academy of Sciences
This work is licensed under the Creative Commons License.