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Titlebook: Biogeochemistry of Forested Catchments in a Changing Environment; A German Case Study Egbert Matzner Book 2004 Springer-Verlag Berlin Heide

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Introduction on the ‘State of the State’depending on their local micrometeorological conditions (light, humidity). A process-oriented representation of forest canopy structures in stand gas-exchange models is, thus, still hindered by the enormous complexity of canopies, which makes it nearly impossible to assess and model them in detail.
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https://doi.org/10.1007/978-3-540-36695-9n of S and N was shown to determine the Al losses from seepage and runoff in acid forest soils (Dise et al. 2001), the N deposition to determine the NO. losses (MacDonald et al. 2002) and the Mg deposition to largely determine the Mg losses (Armbruster et al. 2002).
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Structure of Carbon Dioxide Exchange Processes Above a Spruce Forestorganisms. Distinguishing among these components is critical to obtain insights into the processes underlying ecosystem responses to climate forcing (Buchmann 2002). This is because environmental parameters, such as temperature and soil moisture, differentially affect biological activities (e.g., Baldocchi et al. 2001).
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Introduction on Foreign Policy Change. The summits of the Fichtelgebirge, Schneeberg (1,053 m), and Ochsenkopf (1,023 m) do not reach the timberline. The mountain ridge acts as a main European catchment between the Atlantic North Sea and the Danubian Black Sea.
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https://doi.org/10.1007/978-3-662-32850-7sition may be as high as, or even higher than, the deposition through rainwater (e.g., Saxena and Lin 1990). There is a large variability in physical and chemical conditions of fog events, so that any estimates of their potential roles in biogeochemical cycles must be studied individually for each site and each time period of interest.
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