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  Quantifying the biologically possible range of steady-state soil and surface climates with climate model simulations

Kleidon, A. (2006). Quantifying the biologically possible range of steady-state soil and surface climates with climate model simulations. Biologia (Bratislava), 61(19), S234-S239. doi:10.2478/s11756-006-0164-z.

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Kleidon, A.1, Author           
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1Research Group Biospheric Theory and Modelling, Dr. A. Kleidon, Max Planck Institute for Biogeochemistry, Max Planck Society, ou_1497761              

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Free keywords: Atmosphere-biosphere interactions Climate Feedbacks Maximum entropy production Vegetation Maximum-entropy production Desert world Green planet Global climate Carbon-cycle Atmosphere Vegetation System Thermodynamics Earth
 Abstract: The terrestrial biosphere shapes the exchange fluxes of energy and mass at the land surface. The diversity of plant form and functioning can potentially result in a wide variety of possible climatic conditions at the land surface and in the soil, which in turn feed back to more or less suitable conditions for terrestrial productivity. Here, I use sensitivity simulations to vegetation form and functioning with a global climate model to quantify this possible range of steady-states ("PROSS") of the surface energy- and mass balances. The surface energy- and water balances over land are associated with substantial sensitivity to vegetation parameters, with precipitation varying by more than a factor of 2, and evapotranspiration by a factor of 5. This range in biologically possible climatic conditions is associated with drastically different levels of vegetation productivity. Optimum conditions for maximum productivity axe close to the simulated climate of present-day conditions. These results suggest the conclusions that (a) climate does not determine vegetation form and function, but merely constrains it, and (b) the emergent climatic conditions at the land surface seem to be close to optimal for the functioning of the terrestrial biosphere. [References: 38]

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 Dates: 2016-01-112006
 Publication Status: Issued
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 Identifiers: Other: BGC1177
DOI: 10.2478/s11756-006-0164-z
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Title: Biologia (Bratislava)
Source Genre: Journal
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Pages: - Volume / Issue: 61 (19) Sequence Number: - Start / End Page: S234 - S239 Identifier: ISSN: 1335-6380
CoNE: https://pure.mpg.de/cone/journals/resource/1000000000274600