A Coupled Atmosphere–Ocean Radiative Transfer System Using the Analytic Four-Stream Approximation

Wei-Liang Lee Department of Atmospheric and Oceanic Sciences, University of California, Los Angeles, Los Angeles, California

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K. N. Liou Department of Atmospheric and Oceanic Sciences, University of California, Los Angeles, Los Angeles, California

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Abstract

A coupled atmosphere–ocean radiative transfer model based on the analytic four-stream approximation has been developed. It is shown that this radiation model is computationally efficient and at the same time can achieve acceptable accuracy for flux and heating rate calculations in the atmosphere and the oceans. To take into account the reflection and transmission of the wind-blown air–water interface, a Monte Carlo method has been employed to simulate the traveling of photons and to compute the reflectance and transmittance of direct and diffuse solar fluxes at the ocean surface. For the ocean part, existing bio-optical models, which correlate the concentration of chlorophyll and the absorption and scattering coefficients of phytoplankton and other matters, have been integrated into this coupled model. Comparing to the values computed by more discrete streams illustrates that the relative accuracies of the surface albedo and total transmission in the ocean determined from the present model are generally within 5%, except in cases of the solar zenith angle larger than 80°. Observational data have also been used to validate this model and the results show that the relative differences of downward and upward shortwave fluxes and albedo are within 10% of the observed values. This computationally efficient and physically based radiative transfer model is well suited for consistent flux calculations in a coupled atmosphere–ocean dynamic system.

Corresponding author address: Wei-Liang Lee, Department of Atmospheric and Oceanic Sciences, University of California, Los Angeles, Los Angeles, CA 90095-1565. Email: wllee@atmos.ucla.edu

Abstract

A coupled atmosphere–ocean radiative transfer model based on the analytic four-stream approximation has been developed. It is shown that this radiation model is computationally efficient and at the same time can achieve acceptable accuracy for flux and heating rate calculations in the atmosphere and the oceans. To take into account the reflection and transmission of the wind-blown air–water interface, a Monte Carlo method has been employed to simulate the traveling of photons and to compute the reflectance and transmittance of direct and diffuse solar fluxes at the ocean surface. For the ocean part, existing bio-optical models, which correlate the concentration of chlorophyll and the absorption and scattering coefficients of phytoplankton and other matters, have been integrated into this coupled model. Comparing to the values computed by more discrete streams illustrates that the relative accuracies of the surface albedo and total transmission in the ocean determined from the present model are generally within 5%, except in cases of the solar zenith angle larger than 80°. Observational data have also been used to validate this model and the results show that the relative differences of downward and upward shortwave fluxes and albedo are within 10% of the observed values. This computationally efficient and physically based radiative transfer model is well suited for consistent flux calculations in a coupled atmosphere–ocean dynamic system.

Corresponding author address: Wei-Liang Lee, Department of Atmospheric and Oceanic Sciences, University of California, Los Angeles, Los Angeles, CA 90095-1565. Email: wllee@atmos.ucla.edu

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  • Born, M., and E. Wolf, 1980: Principles of Optics: Electromagnetic Theory of Propagation, Interference and Diffraction of Light. 6th ed. Pergamon Press, 808 pp.

    • Search Google Scholar
    • Export Citation
  • Chandrasekhar, S., 1950: Radiative Transfer. Clarendon Press, 393 pp.

  • Cox, C., and W. Munk, 1954: Measurement of the roughness of the sea surface from photographs of the sun’s glitter. J. Opt. Soc. Amer., 44 , 838850.

    • Search Google Scholar
    • Export Citation
  • Frouin, R., M. Schwindling, and P-Y. Deschamps, 1996: Spectral reflectance of sea foam in the visible and near-infrared: In situ measurements and remote sensing implications. J. Geophys. Res., 101 , 1436114371.

    • Search Google Scholar
    • Export Citation
  • Fu, Q., and K. N. Liou, 1992: On the correlated k-distribution method for radiative transfer in nonhomogenecous atmospheres. J. Atmos. Sci., 49 , 21392156.

    • Search Google Scholar
    • Export Citation
  • Fu, Q., and K. N. Liou, 1993: Parameterization of the radiative properties of cirrus clouds. J. Atmos. Sci., 50 , 20082025.

  • Gordon, H. R., and A. Morel, 1983: Remote Assessment of Ocean Color for Interpretation of Satellite Visible Imagery: A Review. Spring-Verlag, 114 pp.

    • Search Google Scholar
    • Export Citation
  • Gordon, H. R., O. B. Brown, R. H. Evans, J. W. Brown, R. C. Smith, K. S. Baker, and D. K. Clark, 1988: A semianalytic radiance model of ocean color. J. Geophys. Res., 93 , 1090910924.

    • Search Google Scholar
    • Export Citation
  • Gu, Y., J. Farrara, K. N. Liou, and C. R. Mechoso, 2003: Parameterization of cloud–radiation processes in the UCLA general circulation model. J. Climate, 16 , 33573370.

    • Search Google Scholar
    • Export Citation
  • Hale, G. M., and M. R. Querry, 1973: Optical constants of water in the 200-nm to 200-μm wavelength region. Appl. Opt., 12 , 555563.

  • Jin, Z., and K. Stamnes, 1994: Radiative transfer in nonuniformly refracting layered media: Atmosphere-ocean system. Appl. Opt., 33 , 431442.

    • Search Google Scholar
    • Export Citation
  • Jin, Z., and J. J. Simpson, 1999: Bidirectional anisotropic reflectance of snow and sea ice in AVHRR channel 1 and 2 spectral regions. Part I: Theoretical analysis. IEEE Trans. Geosci. Remote Sens., 37 , 543554.

    • Search Google Scholar
    • Export Citation
  • Jin, Z., T. P. Charlock, and K. Rutledge, 2002: Analysis of broadband solar radiation and albedo over the ocean surface at COVE. J. Atmos. Oceanic Technol., 19 , 15851601.

    • Search Google Scholar
    • Export Citation
  • Liou, K-N., 1974: Analytic two-stream and four-stream solutions for radiative transfer. J. Atmos. Sci., 31 , 14731475.

  • Liou, K-N., 2002: An Introduction to Atmospheric Radiation. 2d ed. Academic Press, 583 pp.

  • Liou, K-N., Q. Fu, and T. P. Ackerman, 1988: A simple formulation of the delta-four-stream approximation for radiative transfer parameterizations. J. Atmos. Sci., 45 , 19401948.

    • Search Google Scholar
    • Export Citation
  • Mobley, C. D., 1994: Light and Water: Radiative Transfer in Natural Waters. Academic Press, 592 pp.

  • Moore, K. D., K. J. Voss, and H. R. Gordon, 2000: Spectral reflectance of whitecaps: Their contribution to water-leaving radiance. J. Geophys. Res., 105 , 64936499.

    • Search Google Scholar
    • Export Citation
  • Morel, A., 1988: Optical modeling of the upper ocean in relation to its biogenous matter content (case I waters). J. Geophys. Res., 93 , 1074910768.

    • Search Google Scholar
    • Export Citation
  • Morel, A., 1991: Light and marine photosynthesis: A spectral model with geochemical and climatological implications. Prog. Oceanogr., 26 , 263306.

    • Search Google Scholar
    • Export Citation
  • Morel, A., and L. Prieur, 1977: Analysis of variations of ocean color. Limnol. Oceanogr., 22 , 709772.

  • Morel, A., and S. Maritorena, 2001: Bio-optical properties of oceanic waters: A reappraisal. J. Geophys. Res., 106 , 71637180.

  • Ohlmann, J. C., D. A. Siegel, and C. Gautier, 1996: Ocean mixed layer radiant heating and solar penetration: A global analysis. J. Climate, 9 , 22652280.

    • Search Google Scholar
    • Export Citation
  • Petzold, T. J., 1972: Volume scattering functions for selected ocean waters. Scripps Institution of Oceanography Visibility Laboratory Tech. Rep. 72–78, 79 pp.

  • Preisendorfer, R. W., and C. D. Mobley, 1985: Unpolarized irradiance reflectances and glitter patterns of random capillary waves on lakes and seas, by Monte Carlo simulation. NOAA/Pacific Marine Environmental Laboratory Tech. Memo. 63, 141 pp.

  • Prieur, L., and S. Sathyendranath, 1981: An optical classification of coastal and oceanic waters based on the specific spectral absorption curves of phytoplankton pigments, dissolved organic matters, and other particulate materials. Limnol. Oceanogr., 26 , 671689.

    • Search Google Scholar
    • Export Citation
  • Siegel, D. A., J. C. Ohlmann, L. Washburn, R. R. Bidigare, C. Nosse, E. Field, and Y. Zhou, 1995: Solar radiation, phytoplankton pigments, and radiant heating of the equatorial Pacific warm pool. J. Geophys. Res., 100 , 48854891.

    • Search Google Scholar
    • Export Citation
  • Smith, R. C., and K. S. Baker, 1981: Optical properties of the clearest natural waters (200–800 nm). Appl. Opt., 20 , 177184.

  • Sykes, J. B., 1951: Approximation integration of the equation of transfer. Mon. Not. Roy. Astron. Soc., 111 , 377386.

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