Observations, Evaporation and Preliminary Modelling of Over-Lake Meteorology on Large African Lakes

  • P. F. Hamblin
  • P. Verburg
  • P. Roebber
  • H. A. Bootsma
  • R. E. Hecky
Chapter
Part of the Advances in Global Change Research book series (AGLO, volume 12)

Abstract

Water quality models of lakes require accurate specification of the advective and turbulent transport fields. These are usually obtained from lake hydrodynamic models. In turn, hydrodynamic models require accurate specification of meteorological forcing. Uncertain specification of meteorological forcing over large lakes is one of the main reasons for the lack of correspondence between three-dimensional hydrodynamic models and observations of lake currents, temperatures and water levels. This is especially the case for intermontane lakes where sheltering effects of the surrounding topography disturb the air flow and generate such other mesoscale meteorological features as slope winds which can reinforce lake breezes.

Direct observations of meteorological variables on lakes are sparse in the tropics. We present here the results of such observations for Lakes Malawi/Nyasa and Tanganyika. During 1998–1999 a roving meteorological station was mounted aboard the research vessel, RN Usipa,on Lake Malawi/Nyasa. Ship velocity and position were recorded, thus allowing winds to be measured aboard the moving platform. On Lake Tanganyika similar data were recorded at two moored meteorological buoys for substantial periods over a period of four years. An examination of the longest running series of winds and air temperatures over Lake Malawi/Nyasa showed no obvious interannual differences in wind speed although air temperatures in the second half of 1999 were cooler than in the same period in 1998. On Lake Tanganyika wind speeds decreased between 1993 and 1996 but air temperatures were highest in 1995. Based on spectral analysis, both lakes illustrate a strong diurnal signal of wind components and air temperatures. Calculations of an average evaporation rate for Lake Malawi/Nyasa based on observed meteorological data from all temporal scales and three different calculation methods resulted in a mean of 6.4 ± mm/d. Diurnally fluctuating meteorological conditions accounted for 36% of the total evaporation. Wet and dry season evaporation rates were compared for the two extremities of Lake Tanganyika and found to be higher in south and during the dry season. Preliminary results of an application of a three-dimensional mesoscale meteorological model to Lake Malawi/Nyasa are compared to direct over-lake observations of a number of forcing parameters required by hydrodynamic models. Comparisons of over-lake winds show that modeled winds are superior by three statistical measures to those interpolated from a limited number of shore-based stations.

Key Words

Large lake meteorology Evaporation Climatology modeling 

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References

  1. Beletsky, D., Schwab, D.J., McCormick, M.L., Miller, G.S., Saylor, J.H. and Roebber, P.J. (2000) Hydrodynamic modelling for the 1998 Lake Michigan coastal turbidity plume event, Proc. Sixth Estuarine and Coastal Modelling Symposium, New Orleans. Am. Soc. Civil Engrg., pp. 597–613.Google Scholar
  2. Bootsma, H.A. (1993) Algal dynamics in an African great lake and their relation to hydrographic and meteorological conditions. Doctoral Dissertation. University of Manitoba, Winnipeg, Canada. p. 311.Google Scholar
  3. Chow, V.T., Maidment, D.R. and Mays, L.W. (1988). Applied hydrology,McGraw-Hill.Google Scholar
  4. Dudhia, J. (1989) Numerical study of convection observed during the Winter Monsoon Experiment using a mesoscale two-dimensional model. J. Atmos. Sci 46, 3077–3107.CrossRefGoogle Scholar
  5. Dudhia, J. (1996) A multi-layer soil temperature model for MM5. Preprints, Sixth Annual PSU/NCAR Mesoscale Model Users’ Workshop, Boulder CO, National Center for Atmospheric Research, 49–50.Google Scholar
  6. Fischer, H.B., List, E.J, Koh, T.Y.C., Imberger, J and Brooks, N.H. (1979) Mixing in inland and coastal waters Academic Press New York, 483p.Google Scholar
  7. Grell, G.A., Dudhia, J. and Stauffer D.R. (1994) A description of the fifth generation Penn State/NCAR mesoscale model (MM5). NCAR Tech. Note NCAR/TN-398 STR.Google Scholar
  8. Hamblin, P.F., (1987) Meteorological forcing and water level fluctuations on Lake Erie. J. Great Lakes Res 13, 436–454.CrossRefGoogle Scholar
  9. Hamblin, P.F., Bootsma, H.A. and Hecky, R.E. (2002a) Modeling nutrient upwelling in Lake Malawi/Nyasa Submitted to the J. Great Lakes Research.Google Scholar
  10. Hamblin, P.F., Bootsma,H.A. and Hecky, R.E. (2002b) Surface meteorological observations over Lake Malawi/Nyasa. Submitted to the J. Great Lakes Research.Google Scholar
  11. Hamblin, P.F., Stevens, C. L and Lawrence, G. A. (1999) Simulation of vertical transport in a mining pit lake. J. Hydraulic Res 125 (10), 1029–1038.CrossRefGoogle Scholar
  12. Hamblin, P.F. and Elder, F.C. (1973) A preliminary investigation of the wind stress field over Lake Ontario. Proc. Of the 16th Conf. Great Lakes Res. pp 723–734. Internat. Assoc. Great Lakes Res.Google Scholar
  13. Lemmin, U. and D’Adamo, N. (1996) Summertime winds and direct cyclonic circulation: observations from Lake Geneva. Ann. Geophysicae 14, 1207–1220.Google Scholar
  14. Liu, T.W., Katsaros, K.B. and Businger, J.A. (1979) Bulk parameterization of air-sea exchanges of heat and water vapour including the molecular constraints at the interface. J. Atmos. Sci 36 (9), 1722–1735.CrossRefGoogle Scholar
  15. Mortimer, C.H. (1979) Strategies for coupling of data collection and analysis with dynamic modelling of lake motion, in W.H. Graf and C.H. Mortimer (eds.), Hydrodynamics of lakes. Elsevier Amsterdam.Google Scholar
  16. Mukabana, J.R. and Pielke, R.A. (1996) Investigating the influence of synoptic-scale monsoonal winds and mesoscale numerical model. Mon. Weather Rev 124 (2), 224–243.CrossRefGoogle Scholar
  17. Owen, R.B., Crossley, R., Johnson, T.C., Tweddle, D., Komfield, I., Davison, D.H., Eccles and Engstrom, D.E. (1990) Major low levels of Lake Malawi and their implications for speciation rates in cichlid fishes. Proc. R. Soc. Lond B 240, 519–553.CrossRefGoogle Scholar
  18. Patterson, G, and Kachinjika, O. (1995) Limnology and phytoplankton ecology, in A. Menz (ed.), The Fishery Potential and Productivity of the Pelagic Zone of Lake Malawi/Niassa. Chatham, UK: Natural Resources Institute, pp. 1–67.Google Scholar
  19. Reisner, J., Rasmussen, R.M. and Bruintjes, R.T. (1998) Explicit forecasting of supercooled liquid water in winter storms using the MM5 mesoscale model. Quart.J. Roy. Meteor. Soc 125B, 1071–1108CrossRefGoogle Scholar
  20. Savijarvi, H. (1997) Diurnal winds around Lake Tanganyika. Quart. J. Royal Met. Soc 123, 901–918.CrossRefGoogle Scholar
  21. Spigel, R.H. and Coulter, G. W. (1996) Comparison of hydrology and physical limnology of the East Africa great lakes: Tanganyika, Malawi, Victoria, Kivu and Turkana (with reference to some North American great lakes, in T.C. Johnson and E.O. Odada (eds.), Limnology, Climatology and Paleoclimatology of the East African Lakes. Gordon and Breach, Toronto, pp. 103–139.Google Scholar
  22. Verburg, P. (1997) Lake Tanganyika hydrodynamics and meteorology: the diel cycle. Food and Agricultural Organization of the United Nations. GCP/RAF/271/FIN-TD/73.Google Scholar
  23. Verburg, P. and Hecky, R.E. (2002) Wind patterns, evaporation and related physical variables in Lake Tanganyika. Submitted to J. Great Lakes Research.Google Scholar
  24. Verburg, P., Kakogozo, B., Makasa, L., Muhoza, S. and Tomba, J.M. (1998) Hydrodynamics of lake Tanganyika 1993–1996, Synopsis and Interannual Comparisons. Food and Agricultural Organization of the United Nations. GCP/RAF/271/FIN-TD/87.Google Scholar
  25. Zhang, D.L. and Anthes, R.A. (1982) A high-resolution model of the planetary boundary layer sensitivity tests and comparisons with SESAME-79 data. J. Appl. Meteor 21, 1594–1609.CrossRefGoogle Scholar
  26. Zhang, D.L., Chang, H.R., Seaman, N.L.,Wamer, T.T. and Fritsch, J.M. (1986) A two-way interactive nesting procedure with variable terrain resolution. Mon. Wea. Rev 114, 1330–1339.CrossRefGoogle Scholar

Copyright information

© Kluwer Academic Publishers 2002

Authors and Affiliations

  • P. F. Hamblin
    • 1
  • P. Verburg
    • 2
  • P. Roebber
    • 3
  • H. A. Bootsma
    • 4
  • R. E. Hecky
    • 1
  1. 1.Environment CanadaNational Water Research InstituteBurlingtonCanada
  2. 2.Department of BiologyUniversity of WaterlooWaterlooCanada
  3. 3.Department of Mathematical SciencesUniversity of WisconsinMilwaukeeUSA
  4. 4.Great Lakes WATER InstituteUniversity of WisconsinMilwaukeeUSA

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