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A non-hydrostatic modeling study of surface moisture effects on mesoscale convection induced by sea breeze circulation

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Summary

Convection and subsequent precipitation induced by the sea breeze circulations are often observed in the Florida peninsula during summer. In this study, the mechanisms of initiation and maintenance of the convective clouds and precipitation are investigated. A fully-compressible fine resolution non-hydrostatic mesoscale numerical model is used in this study. Surface energy and moisture budget were included in this model to simulate the diurnal cycle of ground surface temperature and wetness. The model also has a sophisticated boundary layer and explicit cloud physics. A sounding obtained from Orlando, Florida at 1110 UTC 17 July 1991 as part of the Convection and Precipitation Electrification (CaPE) experiment is used for initialization. The initial data for the model is kept in geostrophic and thermal wind balance. Several sensitivity tests were conducted to investigate the effects of different treatments of ground surface moisture and temperature on the model forecast of the convection and precipitation induced by the sea breeze circulations. The simulations agree reasonably well with the observations when both surface energy and moisture budget were included in the model to predict ground surface temperature and wetness. The surface moisture has a significant impact on the formation, strength, sustenance, and the location of convection and precipitation induced by the sea breezes.

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References

  • Arakawa, A., Lamb, V. R., 1977: Computational design of the UCLA general circulation model.Methods in Computational Physics, Vol. 17, New York: Academic Press, pp. 173–265.

    Google Scholar 

  • Bougeault, P., 1987: A qualification study of the French Weather Service limited-area-model, pp. 51–52. In:Extended Abstracts, Third Conference on Mesoscale Processes. American Meteorological Society.

  • Deardorff, J. W., 1980: Stratocumulus-capped mixed layers derived from a three-dimensional model.Bound.-Layer Meteor.,18, 495–527.

    Article  Google Scholar 

  • Hodur, R. M., 1993: Development and testing of the Coupled Ocean/Atmospheric Mesoscale Prediction System (COAMPS). NRL/MR/7533-93-7213, Naval Research Laboratory, 84 pp. [Available from the Naval Research Laboratory, Monterey, CA 93943-3502].

  • Klemp, J., Wilhelmson, R., 1978: The simulation of three-dimensional convective storm dynamics.J. Atmos. Sci.,35, 1070–1096.

    Article  Google Scholar 

  • Louis, J. F., Tiektke, M., Geleyn, J. F., 1979: A parametric model of vertical eddy fluxes in the atmosphere.Bound. Layer Meteor.,17, 187–202.

    Article  Google Scholar 

  • Louis, J. F., Tiektke, M., Geleyn, J. F., 1982: A short history of the operational PBL-parameterization at ECMWF. Workshop on Planetary Boundary Parameterization, ECMWF, Reading, pp. 59–79. [Available from the European Center for Medium-Range Forecasts, Shinfield Park, Reading RG2 9Ax, U.K.]

  • Mahfouf, J. F., Richard, E., Mascart, P., Nickerson, E. C., Rosset, R., 1987: A comparative study of various parameterizations of the planetary boundary in a numerical mesoscale model.J. Climate Appl. Meteor.,26, 1671–1695.

    Article  Google Scholar 

  • McCumber, M. C., 1980: A numerical simulation of the influence of heat and moisture fluxes upon mesoscale circulations. Ph.D. dissertation, Dept. of Environmental Sciences, University of Virginia.

  • Mellor, G., Yamada, T., 1974: A hierarchy of turbulence closure models for planetary boundary layers.J. Atmos. Sci. 31, 1791–1806.

    Article  Google Scholar 

  • Nicholls, M. E., Pielke, R. A., Cotton, W. R., 1991: A two-dimensional numerical investigation of the interaction between sea breezes and deep convection over the Florida peninsula.Mon. Wea. Rev.,119, 298–323.

    Article  Google Scholar 

  • Orlanski, I., 1976: A simple boundary condition for unbounded hyperbolic flows.J. Comput. Phys.,21, 251–269.

    Article  Google Scholar 

  • Pielke, R. A., 1974. A three-dimensional numerical model of the sea breezes over south Florida.Mon. Wea. Rev.,102, 115–139.

    Article  Google Scholar 

  • Robert, A. J., 1966: The investigation of a low order spectral form of the primitive meteorological equations.J. Meteor. Soc. Japan,44, 237–245.

    Google Scholar 

  • Robert, A. J., 1969: The integration of a spectral model of the atmosphere by the implicit methods. Proc. of the WMO/IUGG Symp. on NWP, Tokyo, Japan Meteor. Agency,VII, 19–24.

    Google Scholar 

  • Rutledge, S. A., Hobbs, P. V., 1983: The mesoscale and microscale structure of organization of clouds and precipitation in midlatitude cyclones. VIII: A model for the “seeder-feeder” process in warm-frontal rainbands.J. Atmos. Sci.,40, 1185–1206.

    Article  Google Scholar 

  • Smagorinsky, J., 1963: General circulation experiments with the primitive equations: 1. The basic experiment.Mon. Wea. Rev.,91, 99–164.

    Article  Google Scholar 

  • Tapp, M. C., White, P. W., 1976: A nonhydrostatic mesoscale model.Quart. J. Roy. Meteor. Soc.,102, 227–296.

    Article  Google Scholar 

  • Williams, S. F., Caesar, K., Southwick, K. 1992: The Convection and Precipitation Electrification (CaPE).Operations Summary and Data Inventory. Office of Field Project Support, National Center for Atmospheric Research, Boulder, Colorado.

    Google Scholar 

  • Xu, L., Raman, S., Madala, R. V., 1992: A review of non-hydrostatic numerical models for the atmosphere. First World Congress of Nonlinear Analysis, Tampa, Florida USA. Nonlinear World, Walter de Gruyter, New York, (in press).

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Xu, L., Raman, S., Madala, R.V. et al. A non-hydrostatic modeling study of surface moisture effects on mesoscale convection induced by sea breeze circulation. Meteorl. Atmos. Phys. 58, 103–122 (1996). https://doi.org/10.1007/BF01027559

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