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Solar Influence on Earth's Climate

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Abstract

An increasing number of studies indicate that variations in solar activity have had a significant influence on Earth's climate. However, the mechanisms responsible for a solar influence are still not known. One possibility is that atmospheric transparency is influenced by changing cloud properties via cosmic ray ionisation (the latter being modulated by solar activity). Support for this idea is found from satellite observations of cloud cover. Such data have revealed a striking correlation between the intensity of galactic cosmic rays (GCR) and low liquid clouds (<3.2 km). GCR are responsible for nearly all ionisation in the atmosphere below 35 km. One mechanism could involve ion-induced formation of aerosol particles (diameter range, 0.001–1.0 μm) that can act as cloud condensation nuclei (CCN). A systematic variation in the properties of CCN will affect the cloud droplet distribution and thereby influence the radiative properties of clouds. If the GCR-Cloud link is confirmed variations in galactic cosmic ray flux, caused by changes in solar activity and the space environment, could influence Earth's radiation budget.

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References

  • Bond, G. et al.: 2001, ‘Persistent Solar Influence on North Atlantic Climate during the Holocene’. Science 294, 2130.

    Article  ADS  Google Scholar 

  • Clarke, A. D. et al.: 1998, ‘Particle Nucleation in the Tropical Boundary Layer and its Coupling to Marine Sulfur Sources.’, Science 282, 89-92.

    Article  ADS  Google Scholar 

  • Dickinson, R.: 1975, ‘Solar Variability and the Lower Atmosphere’, Bull.Am.Met.Soc. 56, 1240.

    Article  ADS  Google Scholar 

  • Ferraro, R., Weng, F., Grody, N. and Basist, A.: 1996, ‘An Eight-year (1987-1994) Time Series of Rainfall, Snow Cover, and Sea Ice derived from SSM/I Measurements’, BAMS 77, 891.

    Article  ADS  Google Scholar 

  • Haigh, J. D.: 1996, ‘The Impact of Solar Variability on Climate’, Science 272, 981.

    ADS  Google Scholar 

  • Han, Q., Rossow, W., Zeng, J. and Welch, R.: 2002, ‘Three Different Behaviors of Liquid Water Path of Water Clouds in Aerosol-cloud Interactions’, J.Atmos.Sci. 59, 726.

    Article  ADS  Google Scholar 

  • ISCCP homepage: 2002, ‘ISCCP Calibration Coefficients’, http://isccp.giss.nasa.gov/docs/calib.html.

  • King, M., Radke, L. and Hobbs, P.: 1993, ‘Optical Properties of Marine Stratocumulus Clouds Modified by Ships’, J.Geophys.Res. 98, 2729.

    Article  ADS  Google Scholar 

  • Lean, J., Beer, J. and Bradley, R.: 1992, ‘Reconstruction of Solar Irradiance Since 1610: Implications for Climate Change’, Geophys.Res.Lett. 22, 3195.

    Article  ADS  Google Scholar 

  • Lockwood, G. W. and Thompson, D. T.: 1991, ‘Solar Cycle Relationship Clouded by Neptune's Sustained Brightness Maximum’, Nature 349, 593.

    Article  ADS  Google Scholar 

  • Lockwood, M. R., Stamper, R. and Wild, M. N: 1999, ‘A doubling of the Sun's Coronal Magnetic Field during the Past 100 years’, Nature 399, 437.

    Article  ADS  Google Scholar 

  • Marsh, N. D. and Svensmark, H.: 2000a, ‘Cosmic Rays, Clouds and Climate’, Space Sci.Rev. 94, 215.

    Article  ADS  Google Scholar 

  • Marsh, N. D. and Svensmark, H.: 2000b, ‘Low Cloud Properties Influenced by Cosmic Rays’, Phys.Rev.Lett. 85(23), 5004.

    Article  ADS  Google Scholar 

  • Marsh, N. D. and Svensmark, H.: 2003, ‘GCR and ENSO Trends in ISCCP-D2 Low Cloud Properties’, J.Geophys.Res. 108(D6), 4195 DOI 10.1029/2001JD001264.

    Article  Google Scholar 

  • Moses, J. I., Allen, M. and Yung, Y. L.: 1989, ‘Neptune's Visual Albedo Variations over a Solar Cycle: A Pre-voyager Look at Ion-induced Nucleation and Cloud Formation in Neptune's Troposphere.’, Geophys.Res.Lett. 16, 1489.

    ADS  Google Scholar 

  • Neff, U., Burns, S. J. Mangini, A., Mudelsee, M., Fleitmann, D. and Matter, A.: 2001, ‘Strong Coherence between Solar Variability and the Monsoon in Oman between 9 and 6 kyr Ago’, Nature 411, 290.

    Article  ADS  Google Scholar 

  • Ney, E. R.: 1959, ‘Cosmic Radiation and the Weather’, Nature 183, 451.

    Article  ADS  Google Scholar 

  • Parker, D., Gordon, M., Cullum, D., Sexton, D., Folland, C. and Rayner, N.: 1997, ‘A New Gridded Radiosonde Temperature Data Base and Recent Temperature Trends’, Geophys.Res.Lett. 24, 1499-1502.

    Article  ADS  Google Scholar 

  • Shindell, D., Rind, D., Balabhandran, N., Lean, J. and Lonergan, P.: 1999, ‘Solar Cycle Variability, Ozone, and Climate’, Science 284, 305.

    Article  ADS  Google Scholar 

  • Svensmark, H.: 1998, ‘Influence of Cosmic Rays on Climate’, Phys.Rev.Lett. 81, 5027.

    Article  ADS  Google Scholar 

  • Svensmark, H., Marsh, N. D. and Sjölander, B.: 2003, ‘Solar Influence on Tropospheric Temperatures’ (in preparation); also http://www.dsri.dk/∼hsv.

  • Svensmark, H. and Friis-Christensen, E.: 1997, ‘Variation of Cosmic Ray Flux and Global Cloud Coverage-A Missing Link in Solar-Climate Relationships’, J.Atm.Sol.Terr.Phys. 59, 1225.

    Article  ADS  Google Scholar 

  • Yu, F.: 2002, ‘Altitude Variations of Cosmic Ray Induced Production of Aerosols: Implications for Global Cloudiness and Climate’, J.Geophys.Res. (in press).

  • Yu, F. and Turco, R. P.: 2000, ‘Ultrafine Aerosol Formation via Ion-mediated Nucleation’, Geophys.Res.Lett. 27(6), 883.

    Article  ADS  Google Scholar 

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Marsh, N., Svensmark, H. Solar Influence on Earth's Climate. Space Science Reviews 107, 317–325 (2003). https://doi.org/10.1023/A:1025573117134

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