Prediction of photosynthesis in Scots pine ecosystems across Europe by a needle-level theory
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Published:2018-09-18
Issue:18
Volume:18
Page:13321-13328
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ISSN:1680-7324
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Container-title:Atmospheric Chemistry and Physics
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language:en
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Short-container-title:Atmos. Chem. Phys.
Author:
Hari Pertti, Noe SteffenORCID, Dengel Sigrid, Elbers JanORCID, Gielen Bert, Kerminen Veli-MattiORCID, Kruijt BartORCID, Kulmala LiisaORCID, Lindroth Anders, Mammarella Ivan, Petäjä TuukkaORCID, Schurgers GuyORCID, Vanhatalo AnniORCID, Kulmala MarkkuORCID, Bäck JaanaORCID
Abstract
Abstract. Photosynthesis provides carbon for the synthesis of macromolecules to
construct cells during growth. This is the basis for the key role of
photosynthesis in the carbon dynamics of ecosystems and in the biogenic
CO2 assimilation. The development of eddy-covariance (EC) measurements
for ecosystem CO2 fluxes started a new era in the field studies of
photosynthesis. However, the interpretation of the very variable
CO2 fluxes in evergreen forests has been problematic especially in
transition times such as the spring and autumn. We apply two theoretical
needle-level equations that connect the variation in the light intensity,
stomatal action and the annual metabolic cycle of photosynthesis. We then use
these equations to predict the photosynthetic CO2 flux in five
Scots pine stands located from the northern timberline to Central Europe. Our
result has strong implications for our conceptual understanding of the effects
of the global change on the processes in boreal forests, especially of the
changes in the metabolic annual cycle of photosynthesis.
Funder
Academy of Finland
Publisher
Copernicus GmbH
Subject
Atmospheric Science
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