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A Case Study of Satellite Synthetic Aperture Radar Signatures of Spatially Evolving Atmospheric Convection over the Western Atlantic Ocean

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Abstract

A case study of a particularly intense cold air outbreak over the northAtlantic Ocean extending from the northeast coast of the UnitedStates to the Gulf Stream is described. A RADARSAT satellite synthetic apertureradar (SAR) image of this outbreak dramatically illustrates the spatialevolution of convection. Nearly coincident images from the National Oceanic and Atmospheric Administration's Advanced Very HighResolution Radiometer are used to compare many interesting features.In addition, National Weather Service rawinsonde data, National Data Buoy Center buoy data, and Woods Hole Oceanographic Institute Coastal Mixing and Optics mooring data arepresented. We use these data to help describe the spatial evolution of the atmospheric boundary-layer processes involved in this outbreak.

Rows of cellular convective clouds begin to appear some distance offshore and then slowly increase in horizontal diameter and wavelength in the downwind direction, with a subsequent jump in cloud diameter downwind of the Gulf Stream North Wall (GSNW). The SAR image shows a similar evolution of sea-surface footprints of these boundary-layer features. This change in boundary-layer structure is attributed to corresponding changes in static stability. About 300 km south of the GSNW in the SAR image, an even larger jump in cell diameter appears and the cells becomenon-uniform with bright crescents and filled semi-circles on thedownwind sides of the cells. These are believed to be surface effectsof gust fronts induced by the mesoscale cellular convection and enhanced by the overall northwesterly flow.

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References

  • Agee, E. M.: 1987, 'Mesoscale Cellular Convection over the Oceans', Dyn. Atmos. Oceans 10, 317–341.

    Google Scholar 

  • Atkinson, B. W. and Zhang, J. W.: 1996, 'Mesoscale Shallow Convection in the Atmosphere', Rev. Geophys. 34, 403–431.

    Google Scholar 

  • Atlas, D.: 1994, 'Footprints of Storms on the Sea: A View from Spaceborne Synthetic Aperture Radar', J. Geophys. Res. 99, 7961–7969.

    Google Scholar 

  • Atlas, D. and Black, P. G.: 1994, 'The Evolution of Convective Storms from their Footprints on the Sea as Viewed by Synthetic Aperture Radar From Space', Bull. Amer. Meteorol. Soc. 75, 1183–1190.

    Google Scholar 

  • Atlas, D., Walter, B., Chou, S.-H., and Sheu, P. J.: 1986, 'The Structure of the Unstable Marine Boundary Viewed by Lidar and Aircraft Observations', J. Atmos. Sci. 43, 1301–1318.

    Google Scholar 

  • Babin, S. M., Young, G. S., and Carton, J. A.: 1997, 'A New Model of the Oceanic Evaporation Duct', J. Appl. Meteorol. 36, 193–204.

    Google Scholar 

  • Beal, R. C., Kudryavtsev, V. N., Thompson, D. R., Grodsky, S. A., Tilley, D. G., Dulov, V. A., and Graber, H. C.: 1997, 'The Influence of the Marine Atmospheric Boundary Layer on ERS 1 Synthetic Aperture Radar Imagery of the Gulf Stream', J. Geophys. Res. 102, 5799–5814.

    Google Scholar 

  • Bechtold, P., Fravalo, C., and Pinty, J.-P.: 1992, 'A Study of a Two-Dimensional Cloudiness Transition during a Cold-Air Outbreak Event', Boundary-Layer Meteorol. 60, 243–270.

    Google Scholar 

  • Bernstein, R. L.: 1982, 'Sea Surface Temperature Estimation Using the NOAA-6 Advanced Very High Resolution Radiometer', J. Geophys. Res. 87, 9455–9465.

    Google Scholar 

  • Brummer, B.: 1999, 'Roll and Cell Convection in Wintertime Arctic Cold-Air Outbreaks', J. Atmos. Sci. 56, 2613–2636.

    Google Scholar 

  • Chlond, A.: 1992, 'Three-Dimensional Simulation of Cloud Street Development during a Cold Air Outbreak', Boundary-Layer Meteorol. 58, 161–200.

    Google Scholar 

  • Chou, S. and Ferguson, M. P.: 1991, 'Heat Fluxes and Roll Circulations over theWestern Gulf Stream during an Intense Cold-Air Outbreak', Boundary-Layer Meteorol. 55, 255–281.

    Google Scholar 

  • Etling, D., and Brown, R. A.: 1993, 'Roll Vortices in the Planetary Boundary Layer: A Review', Boundary-Layer Meteorol. 65, 215–248.

    Google Scholar 

  • Fairall, C. W., Bradley, E. F., Rogers, D. P., Edson, J. B., and Young, G. S.: 1996, 'Bulk Parameterization of Air-Sea Fluxes for Tropical Ocean-Global Atmosphere Coupled-Ocean Atmosphere Response Experiment', J. Geophys. Res. 101, 3747–3764.

    Google Scholar 

  • Friedman, K. S. and Li, X.: 2000, 'Monitoring Hurricanes over the Ocean with Wide Swath SAR', Johns Hopkins APL Technical Digest 21, 80–85.

    Google Scholar 

  • Haack, T. and Shirer, H. N.: 1992, 'Mixed Convective-Dynamic Roll Vortices and their Effects on Initial Wind and Temperature Profiles', J. Atmos. Sci. 49, 1181–1201.

    Google Scholar 

  • Hartmann, J., Kottmeier, C., and Raasch, S.: 1997, 'Roll Vortices and Boundary-Layer Development During a Cold Air Outbreak', Boundary-Layer Meteorol. 84, 45–65.

    Google Scholar 

  • Hayes, R. M.: 1981, 'Detection of the Gulf Stream', in R. C. Beal, P. S. DeLeonibus, and I. Katz (eds.), Spaceborne Synthetic Aperture Radar for Oceanography, Johns Hopkins University Press, Baltimore, MD, pp. 146–160.

    Google Scholar 

  • Kelly, R. D.: 1984, 'Horizontal Roll and Boundary-Layer Interrelationships Observed over Lake Michigan', J. Atmos. Sci. 41, 1816–1826.

    Google Scholar 

  • Kropfli, R. A. and P. H. Hildebrand: 1980, 'Three-Dimensional Wind Measurements in the Optically Clear Planetary Boundary Layer with Dual-Doppler Radar', Radio Sci. 15, 283–296.

    Google Scholar 

  • Kuettner, J. P.: 1971, 'Cloud Bands in the Earth's Atmosphere', Tellus 23, 404–425.

    Google Scholar 

  • Melfi, S. H., Spinhirne, J. D., Chou, S.-H., and Palm, S. P.: 1985, 'Lidar Observations of Vertically Organized Convection in the Planetary Boundary Layer over the Ocean', J. Clim. Appl.Meteorol. 24, 806–821.

    Google Scholar 

  • Mitnik, L.: 1992, 'Mesoscale Coherent Structures in the Surface Wind Field during Cold Air Outbreaks over the Far Eastern Seas from the Satellite Side Looking Radar', Société francojaponaise d'océanographie, Tokyo 30, 287–296.

    Google Scholar 

  • Miura, Y.: 1986, 'Aspect Ratios of Longitudinal Rolls and Convective Cells Observed during Cold Air Outbreaks', J. Atmos. Sci. 43, 26–39.

    Google Scholar 

  • Mourad, P. D.: 1996, 'Inferring Multiscale Structure in Atmospheric Turbulence Using Satellitebased Synthetic Aperture Radar Imagery', J. Geophys. Res. 101, 18433–18449.

    Google Scholar 

  • Mourad, P. D. and Walter, B. A.: 1996, 'Analysis of Mesoscale Linear Features Observed in the Arctic Atmospheric Boundary Layer', Mon. Wea. Rev. 124, 1924–1940.

    Google Scholar 

  • Müller, G. and Chlond, A.: 1996, 'Three-Dimensional Numerical Study of Cell Broadening during Cold-Air Outbreaks', Boundary-Layer Meteorol. 81, 289–323.

    Google Scholar 

  • Müller, G., Brümmer, B., and Alpers, W.: 1999, 'Roll Convection within an Arctic Cold-Air Outbreak: Interpretation of In Situ Aircraft Measurements and Spaceborne SAR Imagery by a Three-Dimensional Atmospheric Model', Mon. Wea. Rev. 127, 363–380.

    Google Scholar 

  • Robinson, S. K.: 1991, 'Coherent Motions in the Turbulent Boundary Layer', Annu. Rev. FluidMech. 23, 601–639.

    Google Scholar 

  • Sheu, P. J. and Agee, E. M.: 1977, 'Kinematic Analysis and Air-Sea Heat Flux Associated with Mesoscale Cellular Convection during AMTEX', J. Atmos. Sci. 34, 793–801.

    Google Scholar 

  • Sikora, T. D., Young, G. S., Beal, R. C., and Edson, J. B.: 1995, 'Use of Spaceborne Synthetic Aperture Radar Imagery of the Sea Surface in Detecting the Presence and Structure of the Convective Marine Atmospheric Boundary Layer', Mon. Wea. Rev. 123, 3623–3632.

    Google Scholar 

  • Sikora, T. D., Young, G. S., Shirer, H. N., and Chapman, R. D.: 1997, 'Estimating Convective Boundary Layer Depth from Microwave Radar Imagery of the Sea Surface', J. Appl. Meteorol. 36, 833–845.

    Google Scholar 

  • Stensrud, D. J. and Shirer, H. N.: 1988, 'Development of Boundary Layer Rolls from Dynamic Instabilities', J. Atmos. Sci. 45, 1007–1019.

    Google Scholar 

  • Stull, R. B.: 1991, An Introduction to Boundary Layer Meteorology, Kluwer Academic Publishers, Norwell, MA, 666 pp.

    Google Scholar 

  • Sykes, R. I., Lewellen, W. S., and Henn, D. S.: 1988, 'A Numerical Study of the Development of Cloud-Street Spacing', J. Atmos. Sci. 45, 2556–2569.

    Google Scholar 

  • Sykes, R. I., Lewellen, W. S., and Henn, D. S.: 1990, 'Numerical Simulation of the Boundary-Layer Eddy Structure during the Cold-Air Outbreak of GALE IOP 2', Mon. Wea. Rev. 118, 363–374.

    Google Scholar 

  • Thompson, D. R.: 1989, 'Probing the Ocean Surface with Microwave Radar', Johns Hopkins APL Technical Digest 10, 332–338.

    Google Scholar 

  • Thompson, T. W., Liu, W. T., and Weissman, D. E.: 1983, 'Synthetic Aperture Radar Observation of Ocean Roughness from Rolls in an Unstable Marine Boundary Layer', Geophys. Res. Lett. 10, 1172–1175.

    Google Scholar 

  • Weckwerth, T. M., Wilson, J. W., Wakimoto, R. M., and Crook, N. A.: 1997, 'Horizontal Convective Rolls: Determining the Environmental Conditions Supporting their Existence and Characteristics', Mon. Wea. Rev. 125, 505–526.

    Google Scholar 

  • Winstead, N. S. and Mourad, P. D.: 2000, 'Shallow Great Lake-Scale Atmospheric Thermal Circulation Imaged by Synthetic Aperture Radar', Mon. Wea. Rev. 128, 3654–3663.

    Google Scholar 

  • Young, G. S.: 1988, 'Convection in the Atmospheric Boundary Layer', Earth Sci. Rev. 25, 179–198.

    Google Scholar 

Download references

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Babin, S.M., Sikora, T.D. & Winstead, N.S. A Case Study of Satellite Synthetic Aperture Radar Signatures of Spatially Evolving Atmospheric Convection over the Western Atlantic Ocean. Boundary-Layer Meteorology 106, 527–546 (2003). https://doi.org/10.1023/A:1021236600569

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