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Energy Balance of the Earth

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Energy Flows, Material Cycles and Global Development

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Abstract

The energy transformations on Earth are discussed in this chapter. The Earth’s temperature is determined by the global energy balance between radiative energy coming from the Sun and radiative energy emitted back to space. The atmosphere has a strong additional impact on the global energy balance as it efficiently absorbs infrared radiation coming from the surface of the Earth. As a result of this greenhouse effect, the surface temperature is much higher than in the absence of the atmosphere. Life on Earth has the ability to convert energy received from the Sun into energy-containing chemical components via photosynthesis. The biosphere that is based on this mechanism is capable of changing energy-relevant properties of the Earth and alters the energy balance on a global scale. Also discussed are spatio-temporal variations of the conditions on Earth, which are caused by the movement of Earth around the Sun and its rotation. Finally, selected simple feedback models of the Earth are treated to describe important general aspects of the global climate system.

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References

  • Barkstrom BR (1984) The Earth Radiation Budget Experiment (ERBE). Bull Amer Meteorol Soc 65:1170–1185

    Google Scholar 

  • Barkstrom BR (2009) ISLSCP II Earth Radiation Budget Experiment (ERBE) Monthly Albedo, 1986–1990. In: Hall FG, Collatz G, Meeson B, Los S, Brown de Colstoun E, Landis D (eds) ISLSCP Initiative II Collection. Data set available on-line from Oak Ridge National Laboratory Distributed Active Archive Center, Oak Ridge, Tennessee, U.S.A. doi:10.3334/ORNLDAAC/957

  • Budyko MI (1969) The effects of solar radiation on the climate of the earth. Tellus 21:611–619

    Google Scholar 

  • Caldeira K, Kasting JF (1992) Susceptibility of the early Earth to irreversible glaciation caused by carbon dioxide clouds. Nature 359:226–228

    Google Scholar 

  • Gordley LL, Marshall BT, Chu AD (1994) LINEPAK: Algorithms for modeling spectral transmittance and radiance. J Quant Spectrosc Ra 52:563–580

    Google Scholar 

  • Gueymard C (1995) SMARTS, a simple model of the atmospheric radiative transfer of sunshine: Algorithms and performance assessment. Professional paper FSEC-PF-270-95. Florida Solar Energy Center, 1679 Clearlake Rd., Cocoa, FL 32922

    Google Scholar 

  • Gueymard C (2001) Parameterized transmittance model for direct beam and circumsolar spectral irradiance. Solar Energy 71:325–346

    Google Scholar 

  • Hall AE (1979) A model of leaf photosynthesis and respiration for predicting carbon dioxide assimilation in different environments. Oecologia 43:299–316

    Google Scholar 

  • Hartmann DL (1994) Global Physical Climatology. Academic Press, San Diego

    Google Scholar 

  • Henderson-Sellers A, McGuffie K (1987) A Climate Modeling Primer. Wiley, New York

    Google Scholar 

  • Hoffmann PF, Schrag DP (2002) The snowball Earth hypothesis: testing the limits of global change. Terra Nova 14:129–155

    Google Scholar 

  • IPCC Intergovernmental Panel on Climate Change (2007a) Climate Change 2007 – The Physical Science Basis. Contribution of Working Group I to the Fourth Assessment Report of the IPCC. Chapter 2 – Changes in Atmospheric Constituents and in Radiative Forcing. Cambridge University Press, Cambridge

    Google Scholar 

  • IPCC Intergovernmental Panel on Climate Change (2007b) Climate Change 2007 – The Physical Science Basis. Contribution of Working Group I to the Fourth Assessment Report of the IPCC. Chapter 8 – Climate Models and Their Evaluation. Cambridge University Press, Cambridge

    Google Scholar 

  • Jacobs DJ (1999) Introduction to Atmospheric Chemistry. Princeton University Press, Princeton

    Google Scholar 

  • Kiehl JT, Trenbert KE (1997) The Earth’s annual global mean energy budget. Bull Am Met Soc 78:197–208

    Google Scholar 

  • Kleidon A (2009) Nonequilibrium thermodynamics and maximum entropy production in the Earth system. Naturwissenschaften 96:653–677

    Google Scholar 

  • Knutti R, Hegerl GC (2008) The equilibrium sensitivity of the Earth’s temperature to radiation changes. Nat Geosci 1:735–743

    Google Scholar 

  • Kondratyev KY, Moskalenko NI (1984) The role of carbon dioxide and other minor gaseous components and aerosols in the radiation budget. In Houghton JT (ed) The Global Climate. Cambridge University Press, Cambridge

    Google Scholar 

  • Larcher W (2003) Physiological Plant Ecology. 4th edn. Springer, Berlin

    Google Scholar 

  • Lieth H (1975) Quantitative evaluation of global primary producticity models generated by computers. In Lieth H, Whittaker RH (eds) (1975) Primary productivity of the biosphere. Ecological Studies. Springer, Berlin

    Google Scholar 

  • McGuffie K, Henderson-Sellers A (2005) A Climate Modeling Primer, 3rd edn. Wiley, Chichester

    Google Scholar 

  • Schlesinger WH (1997) Biogeochemistry: An Analysis of Global Change, 2nd edn. Academic Press, San Diego

    Google Scholar 

  • Schultz J (2000) Handbuch der Ökozonen. Eugen Ulmer Verlag, Stuttgart

    Google Scholar 

  • Sellers WD (1969) A climate model based on the energy balance of the earth-atmosphere system. J Appl Meteorol 8:392–400

    Google Scholar 

  • Sumner DY, Kirschvink JL, Runnegar BN (1987) Soft-sediment paleomagnetic fold tests of late Precambrian glaciogenic sediments. Eos Trans Am Geophys Union 68:1251

    Google Scholar 

  • Trenberth KE, Fasullo JT, Kiehl J (2009) Earth’s Global Energy Budget. Bull Am Met Soc 90:311–323

    Google Scholar 

  • Walter H, Breckle SW (1991) Ökologie der Erde, Bd.4: Spezielle Ökologie der gemäßigten und arktischen Zonen außerhalb Euro-Nordasiens. Fischer, Stuttgart

    Google Scholar 

  • Watson AJ, Lovelock JE (1983) Biological homeostasis of the global environment: The parable of Daisyworld. Tellus 35B:284–289

    Google Scholar 

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Correspondence to Georg Schaub .

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Schaub, G., Turek, T. (2016). Energy Balance of the Earth. In: Energy Flows, Material Cycles and Global Development. Environmental Science and Engineering(). Springer, Cham. https://doi.org/10.1007/978-3-319-29495-7_3

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