Airborne Retrievals of Snow Microwave Emissivity at AMSU Frequencies Using ARTS/SCEM-UA

R. Chawn Harlow Met Office, Exeter, United Kingdom

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Abstract

The remote sounding, by satellite, of atmospheric temperature and humidity is an important source of data for assimilation into operational weather forecasting routines. For retrievals of these variables near the surface, wavebands with low optical depths are monitored to allow penetration through the overlying atmosphere. Brightness temperatures in these relatively transparent bands are also sensitive to the land surface emissivity and effective temperature. Inadequate understanding of these land surface emissivities is a major issue when assimilating Advanced Microwave Sounding Unit data for the land-covered portion of the globe. One approach for estimating the emissivity of snow-covered surfaces is an empirical model derived from satellite-based and land-based retrievals of emissivity for a variety of snow types. The Met Office’s Hercules C-130 aircraft flew over snow-covered Arctic terrain of northern Finland during the Polar Experiment (POLEX) of March 2001. On these flights, microwave radiometers provided microwave brightness temperatures at 23.8, 50.3, 89.0, 157, and 183 GHz. The work presented here uses these data along with a robust multiparameter optimization routine [Shuffled Complex Evolution Metropolis (SCEM-UA)] coupled to the Atmospheric Radiative Transfer Simulator (ARTS) to retrieve emissivities at the measured frequencies. These results are then used to validate an empirical model. This latter model predicts 23.8–157-GHz emissivities with an RMSE of less than 0.02 and bias of less than 0.01 when compared with data at an incidence angle of 40°. Nonmonotonic behavior in the emissivity spectrum for this campaign, reported in earlier work, is confirmed by the retrievals presented here.

Corresponding author address: R. Chawn Harlow, Met Office, FitzRoy Road, Exeter EX1 3PB, United Kingdom. Email: chawn.harlow@metoffice.gov.uk

Abstract

The remote sounding, by satellite, of atmospheric temperature and humidity is an important source of data for assimilation into operational weather forecasting routines. For retrievals of these variables near the surface, wavebands with low optical depths are monitored to allow penetration through the overlying atmosphere. Brightness temperatures in these relatively transparent bands are also sensitive to the land surface emissivity and effective temperature. Inadequate understanding of these land surface emissivities is a major issue when assimilating Advanced Microwave Sounding Unit data for the land-covered portion of the globe. One approach for estimating the emissivity of snow-covered surfaces is an empirical model derived from satellite-based and land-based retrievals of emissivity for a variety of snow types. The Met Office’s Hercules C-130 aircraft flew over snow-covered Arctic terrain of northern Finland during the Polar Experiment (POLEX) of March 2001. On these flights, microwave radiometers provided microwave brightness temperatures at 23.8, 50.3, 89.0, 157, and 183 GHz. The work presented here uses these data along with a robust multiparameter optimization routine [Shuffled Complex Evolution Metropolis (SCEM-UA)] coupled to the Atmospheric Radiative Transfer Simulator (ARTS) to retrieve emissivities at the measured frequencies. These results are then used to validate an empirical model. This latter model predicts 23.8–157-GHz emissivities with an RMSE of less than 0.02 and bias of less than 0.01 when compared with data at an incidence angle of 40°. Nonmonotonic behavior in the emissivity spectrum for this campaign, reported in earlier work, is confirmed by the retrievals presented here.

Corresponding author address: R. Chawn Harlow, Met Office, FitzRoy Road, Exeter EX1 3PB, United Kingdom. Email: chawn.harlow@metoffice.gov.uk

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  • Aumann, H. H., and C. R. Miller, 1995: Atmospheric infrared Sounder (AIRS) on the Earth Observing System. Advanced and Next-Generation Satellites, H. Fujisada and M. N. Sweeting, Eds., International Society for Optical Engineering (SPIE Proceedings Vol. 2583), 332–338.

    • Search Google Scholar
    • Export Citation
  • Buehler, S. A., P. Eriksson, T. Kuhn, A. von Engeln, and C. Verdesa, 2005a: ARTS, the Atmospheric Radiative Transfer Simulator. J. Quant. Spectrosc. Radiat. Transfer, 91 , 6593.

    • Search Google Scholar
    • Export Citation
  • Buehler, S. A., P. Eriksson, W. Haas, N. Koulev, T. Kuhn, and O. Lemke, 2005b: ARTS user guide. University of Bremen, 208 pp. [Available online at http://www.sat.uni-bremen.de/arts/.].

  • Cayla, F., and P. Javelle, 1995: IASI instrument overview. Advanced and Next-Generation Satellites, H. Fujisada and M. N. Sweeting, Eds., International Society for Optical Engineering (SPIE Proceedings Vol. 2583), 271–281.

    • Search Google Scholar
    • Export Citation
  • Choudhury, B. J., T. J. Schmugge, A. Chang, and R. W. Newton, 1979: Effect of surface roughness of the microwave emission from soils. J. Geophys. Res., 84 , 56995706.

    • Search Google Scholar
    • Export Citation
  • Deblonde, G., and S. English, 2003: One-dimensional variational retrievals from SSMIS-simulated observations. J. Appl. Meteor., 42 , 14061420.

    • Search Google Scholar
    • Export Citation
  • Diak, G. R., D. S. Kim, M. S. Whipple, and X. H. Wu, 1992: Preparing for the AMSU. Bull. Amer. Meteor. Soc., 73 , 19711984.

  • English, S. J., 1999: Estimation of temperature and humidity profile information from microwave radiances over different surface types. J. Appl. Meteor., 38 , 15261541.

    • Search Google Scholar
    • Export Citation
  • English, S. J., R. J. Renshaw, P. C. Dibben, A. J. Smith, P. J. Rayer, C. Poulsen, F. W. Saunders, and J. R. Eyre, 2000: A comparison of the impact of TOVS and ATOVS satellite sounding data on the accuracy of numerical weather forecasts. Quart. J. Roy. Meteor. Soc., 126 , 29112931.

    • Search Google Scholar
    • Export Citation
  • Eriksson, P., C. Jimenez, and S. A. Buehler, 2005: Qpack, a general tool for instrument simulation and retrieval work. J. Quant. Spectrosc. Radiat. Transfer, 91 , 4764.

    • Search Google Scholar
    • Export Citation
  • Haggerty, J. A., and J. A. Curry, 2001: Variability of sea ice emissivity estimated from airborne passive microwave measurements during FIRE SHEBA. J. Geophys. Res., 106 , 1526515277.

    • Search Google Scholar
    • Export Citation
  • Heikinheimo, M., M. Kangas, and H. Koivusalo, 2001: Micrometeorological measurements during the WINTEX campaign at Sodankylä. Theor. Appl. Climatol., 70 .(documented dataset on appended CD).

    • Search Google Scholar
    • Export Citation
  • Hewison, T., 1995: The design of Deimos: A microwave radiometer with channels at 23.8GHz and 50.3GHz for the UK Met research flight C-130 aircraft. Proc. IGARSS’95, Florence, Italy, IGARSS, 2261–2263.

  • Hewison, T. J., 2001: Airborne measurements of forest and agricultural land surface emissivity at millimetre wavelengths. IEEE Trans. Geosci. Remote Sens., 39 , 393400.

    • Search Google Scholar
    • Export Citation
  • Hewison, T. J., 2006: Aircraft validation of clear air absorption models at millimeter wavelengths (89–183 GHz). J. Geophys. Res., 111 .D14303, doi:10.1029/2005JD006719.

    • Search Google Scholar
    • Export Citation
  • Hewison, T. J., and S. J. English, 1999: Airborne retrievals of snow and ice surface emissivity at millimetre wavelengths. IEEE Trans. Geosci. Remote Sens., 37 , 18711879.

    • Search Google Scholar
    • Export Citation
  • Hewison, T. J., N. Selbach, G. Heygster, J. P. Taylor, and A. J. McGrath, 2002: Airborne measurements of Arctic sea ice, glacier and snow emissivity at 24-183 GHz. Proc. IGARSS’02, Toronto, ON, Canada, IGARSS, 2851–2855.

  • Hilton, F., S. English, and C. Poulsen, 2005: Establishing a microwave land surface emissivity scheme in the Met Office 1D-Var. Proc. 14th Int. TOVS Study Conf., Beijing, China, International TOVS Working Group. [Available online at http://cimss.ssec.wisc.edu/itwg/itsc/itsc14/proceedings.].

  • Jones, A. S., and T. H. Vonder Haar, 1997: Retrieval of microwave surface emittance over land using coincident microwave and infrared satellite measurements. J. Geophys. Res., 102 , 1360913626.

    • Search Google Scholar
    • Export Citation
  • Jordan, R., 1991: A one-dimensional temperature model for a snow cover: Technical documentation for SNTHERM.89. CRREL Special Rep. 91-16, 64 pp.

  • Koivusalo, H., M. Heikinheimo, and T. Karvonen, 2001: Test of a simple two-layer parameterisation to simulate the energy balance and temperature of a snow pack. Theor. Appl. Climatol., 70 , 1–4. 6579.

    • Search Google Scholar
    • Export Citation
  • Mätzler, C., 1994: Passive microwave signatures of landscapes in winter. Meteor. Atmos. Phys., 54 , 241260.

  • McGrath, A., and T. Hewison, 2001: Measuring the accuracy of MARSS—An airborne microwave radiometer. J. Atmos. Oceanic Technol., 18 , 20032012.

    • Search Google Scholar
    • Export Citation
  • Prigent, C., J. P. Wigneron, W. B. Rossow, and J. R. Pardo-Carrion, 2000: Frequency and angular variations of land surface microwave emissivities: Can we estimate SSM/T and AMSU emissivities from SSM/I emissivities? IEEE Trans. Geosci. Remote Sens., 38 , 23732386.

    • Search Google Scholar
    • Export Citation
  • Prigent, C., F. Aires, and W. B. Rossow, 2003: Retrieval of surface and atmospheric geophysical variables over snow-covered land from combined microwave and infrared satellite observations. J. Appl. Meteor., 42 , 368380.

    • Search Google Scholar
    • Export Citation
  • Prigent, C., F. Chevallier, F. Karbou, P. Bauer, and G. Kelly, 2005: AMSU-A land surface emissivity estimation for numerical weather prediction assimilation schemes. J. Appl. Meteor., 44 , 416426.

    • Search Google Scholar
    • Export Citation
  • Rosenkranz, P. W., 1993: Absorption of microwaves by atmospheric gases. Atmospheric Remote Sensing by Microwave Radiometry, M. A. Janssen, Ed., John Wiley and Sons, 37–90.

    • Search Google Scholar
    • Export Citation
  • Rosenkranz, P. W., 1998: Water vapour microwave continuum absorption: A comparison of measurements and models. Radio Sci., 33 , 919928.

    • Search Google Scholar
    • Export Citation
  • Selbach, N., 2003: Determination of total water vapor and surface emissivity of sea ice at 89 GHz, 157 GHz, 183 GHz in the Arctic winter. Ph.D. thesis, University of Bremen, 191 pp. [Available online at http://iup.physik.uni-bremen.de:8084/publications.html.].

  • Sturm, M., J. Holmgren, and G. E. Liston, 1995: A seasonal snow cover classification-system for local to global applications. J. Climate, 8 , 12611283.

    • Search Google Scholar
    • Export Citation
  • Taylor, J. P., S. M. Newmann, T. J. Hewison, and A. McGrath, 2003: Water vapor line and continuum absorption in the thermal infrared—Reconciling models and observations. Quart. J. Roy. Meteor. Soc., 129 , 29492969.

    • Search Google Scholar
    • Export Citation
  • Ulaby, F. T., R. K. Moore, and A. K. Fung, 1986: From Theory to Applications. Vol. 3, Microwave Remote Sensing: Active and Passive, Artech House, 2162 pp.

  • Vrugt, J. A., H. V. Gupta, W. Bouten, and S. Sorooshian, 2003: A shuffled complex evolution Metropolis algorithm for optimization and uncertainty assessment of hydrologic model parameters. Water Resour. Res., 39 , 12011214.

    • Search Google Scholar
    • Export Citation
  • Wang, J. R., and B. J. Choudhury, 1981: Remote sensing of soil moisture content over bare field at 1.4 GHz frequency. J. Geophys. Res., 86 , 52775282.

    • Search Google Scholar
    • Export Citation
  • Weng, F., and B. Yan, 2003: A microwave snow emissivity model. Proc. 13th Int. TOVS Study Conf., Sainte Adele, QC, Canada, International TOVS Working Group. [Available online at http://cimss.ssec.wisc.edu/itwg/itsc/itsc13/proceedings.].

  • Wiesmann, A., and C. Mätzler, 1999: Microwave emission model of layered snowpacks. Remote Sens. Environ., 70 , 307316.

  • Wiesmann, A., C. Mätzler, and T. Weise, 1998: Radiometric and structural measurements of snow samples. Radio Sci., 33 , 273289.

  • Wiesmann, A., C. Fierz, and C. Mätzler, 2000: Simulation of microwave emission from physically modeled snowpacks. Ann. Glaciol., 31 , 397405.

    • Search Google Scholar
    • Export Citation
  • Yan, B., and F. Weng, 2003: A ten-year (1993-2002) time-series of microwave land emissivity. Microwave Remote Sensing of the Atmosphere and Environment III, C. D. Kummerow, J. Jiang, and S. Uratuka, Eds., International Society for Optical Engineering (SPIE Proceedings Vol. 4894), 278–286.

    • Search Google Scholar
    • Export Citation
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