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Diagnostic modelling of within-water processes in reservoirs

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Abstract

The objectives of diagnostic calculations using mathematical models of reservoirs are formulated. The structure of a box hydrological model GMV-MGU is described, and the results of calculation of daily water balance, internal heat exchange structure, and heat balance of individual areas in the Mozhaisk and Rybinsk reservoirs are given. First results of calculation of variations in mean daily phytoplankton biomass in the near-dam pool of a weakly eutrophic water body in period of spring (diatoms) and summer (blue-green) blooming are presented.

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References

  1. Alekin, O.A., Osnovy gidrokhimii (Fundamentals of Hydrochemistry), Leningrad: Gidrometeoizdat, 1970.

    Google Scholar 

  2. Butorin, N.V., Gidrologicheskie protsessy i dinamika vodnykh mass v vodokhranilishchakh Volzhskogo kaskada (Hydrological Processes and Water Mass Dynamics in Reservoirs of the Volga System), Leningrad: Nauka, 1969.

    Google Scholar 

  3. Vinberg, G.G., Pervichnaya produktsiya vodoemov (Primary Production of Water Bodies), Minsk: Izd. AN BSSR, 1960.

    Google Scholar 

  4. Vodokhranilishcha Verkhnei Volgi (Upper Volga Reservoirs), Leningrad: Gidrometeoizdat, 1975.

  5. Grechushnikova, M.G., The Role of Convective and Wind-Induced Mixing in Thermal Stratification of a Shallow Water Body, Vestn. Mosk. Univ., Ser. 5, Geography, 2004, no. 2, pp. 9–15.

  6. Grechushnikova, M.G., and Antonov, A.A., Calculating the Components of Vertical and Horizontal Water Exchange in the Mozhaisk Reservoir, Tr. Vseros. konf. “Ledovye i termicheskie protsessy v vodnykh ob”ektakh Rossii” (Proc. All-Russia Conf. “Ice and Thermal Processes in Water Bodies in Russia), Arkhangel’sk, 2007, pp. 61–64.

  7. Datsenko, Yu.S., Edel’shtein, K.K., Goncharov, A.V., and Puklakov, V.V., Variations in the Hydroecological Characteristics of Water Masses in the Central Pool of the Mozhaisk Reservoir, Water Resour., 2005, vol. 32, no. 3, pp. 319–326.

    Article  Google Scholar 

  8. Iorgensen, S.E., Upravlenie ozernymi ekosistemami (Lake Ecosystem Control), Moscow: Agropromizdat, 1985.

    Google Scholar 

  9. Kompleksnye issledovaniya vodokhranilishch (Multidisciplinary Studies of Reservoirs), Moscow: Izd. MGU, 1979.

  10. Mamaev, O.I., Termokhalinnyi analiz vod Mirovogo okeana (Thermohaline Analysis of World Ocean Water), Leningrad: Gidrometeoizdat, 1987.

    Google Scholar 

  11. Puklakov, V.V., Heat and Mass Exchange in a Valley-Type Reservoir: Case Study of the Mozhaisk Reservoir, Extended Abstract of Cand. Sci. (Geogr.) Dissertation, Moscow: MGU, 1987.

    Google Scholar 

  12. Puklakov, V.V., The Contribution of Density Currents to Reservoir Internal Water Exchange, Water Resour., 1999, vol. 26, no. 2, pp. 138–145.

    Google Scholar 

  13. Puklakov, V.V., Gidrologicheskaya model’ vodokhranilishcha: rukovodstvo dlya pol’zovatelei (Hydrological Model of a Reservoir: User’s Guide), Moscow: GEOS, 1999.

    Google Scholar 

  14. Puklakov, V.V. and Grechushnikova, M.G., Simulation of Rybinsk Reservoir Hydrological Regime Using HME Model, in Sovremennye problemy vodokhranilishch i ikh vodosborov (Current Problems of Reservoirs and Their Watersheds), Perm, 2009, vol. 1, pp. 120–125.

    Google Scholar 

  15. Puklakov, V.V., and Edel’shtein, K.K., Calculations of Density Currents in the Mozhaisk Reservoir, Meteorol. Gidrol., 2001, no. 5, pp. 94–104.

  16. Pyrkin, Yu.G. and Samolyubov, B.I., Dynamics and Structure of Bottom Stratified Current in a Reservoir, in Dinamika i termika rek i vodokhranilishch (Dynamics and Thermal Processes in Rivers and Reservoirs), Moscow: Nauka, 1984, pp. 38–61.

    Google Scholar 

  17. Rukovodstvo po gidrologicheskim raschetam pri proektirovanii vodokhranilishch (Guide for Hydrological Calculations during Reservoir Designing), Leningrad: Gidrometeoizdat, 1983.

  18. Samolyubov, B.I., Plotnostnye techeniya i diffuziya primesei (Density Currents and Solute Diffusion), Moscow: Izd. LKI, 2007.

    Google Scholar 

  19. Sarkisyan, A.S., Chislennyi analiz i prognoz morskikh techenii (Numerical Analysis and Forecasts of Sea Currents), Leningrad: Gidrometeoizdat, 1977.

    Google Scholar 

  20. Termodinamicheskie protsessy v glubokikh ozerakh (Thermodynamic Processes in Deep Lakes), Leningrad: Nauka, 1981.

  21. Filatov, N.N., Gidrodinamika ozer (Lake Hydrodynamics), St. Petersburg: Nauka, 1991.

    Google Scholar 

  22. Khenderson-Sellers, B., Inzhenernaya limnologiya (Engineering Limnology), Leningrad: Gidrometeoizdat, 1987.

    Google Scholar 

  23. Edel’shtein, K.K., Vodnye massy dolinnykh vodokhranilishch (Water Masses of Valley Reservoirs), Moscow: Izd. MGU, 1991.

    Google Scholar 

  24. Edel’shtein, K.K., Ershova, M.G., and Puklakov, V.V., Modeling the Hydrological Structure of Valley Reservoirs, Vestn. Mosk. Univ., Ser. 5, Geogr., 1989, no. 2, pp. 50–58.

  25. Edel’shtein, K.K., Goncharov, A.V., Datsenko, Yu.S., et al., Superverification of Reservoir Hydrological Model, in Teoreticheskie i prikladnye problemy sovremennoi limnologii (Theoretical and Applied Problems of Modern Limnology), Minsk: BGU, 2003, pp. 237–239.

    Google Scholar 

  26. Edel’shtein, K.K., Datsenko, Yu.S., and Puklakov, V.V., Experimental Evaluation of Model Calculation Error of Water Mass Stratification in a Reservoir, Vestn. Mosk. Univ., Ser. 5, Geogr., 2005, no. 6, pp. 20–24.

  27. Berger, F., Die Dichte Naturlicher Wasser Und Konzentrations-Stabilitat in Seen, Arch. F. Hydrobiologie, Stuttgart, 1955. Suppl.-B. XXII. H.P. 286–294.

  28. CE-QUAL-R1: A Numerical One-Dimensional Model of Reservoir Water Quality; User’s Manyal. Instruction Report E-82-1, Vicksburg: US Army Engineering Waterways Experiment Station Environ. Laboratory, 1986.

  29. Ryan, H.J., and Harleman, D.R.F., Prediction of the Annual Cycle of Temperature Change in a Stratified Lake or Reservoir: Mathematical Model and User’s Manual, 1971, Cambridge: MIT Tech. Report 137.

    Google Scholar 

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Correspondence to Yu. S. Datsenko.

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Original Russian Text © K.K. Edelshtein, M.G. Grechushnikova, Yu.S. Datsenko, V.V. Puklakov, 2012, published in Vodnye Resursy, 2012, Vol. 39, No. 4, pp. 437–451.

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Edelshtein, K.K., Grechushnikova, M.G., Datsenko, Y.S. et al. Diagnostic modelling of within-water processes in reservoirs. Water Resour 39, 432–445 (2012). https://doi.org/10.1134/S0097807812040045

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  • DOI: https://doi.org/10.1134/S0097807812040045

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