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Effect of tree species and soil properties on nutrient immobilization in the forest floor

  • Nutrient Cycling in Forest Ecosystems Related to Stability and Productivity
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Abstract

To investigate the effect of tree species and soil properties on organic matter accumulation and associated nutrients, an area-based sampling of the forest floor was carried out in a 28 years old species trial including Norway spruce, Douglas fir, beech, and common oak at two sites, a poor and sandy soil, and a fertile loamy soil.

The accumulation of C, N and P in the forest floor was significantly higher at the sandy site than at the loamy site under all species. At the loamy site, oak was characterized by lesser accumulation of C, N and P than the other species. Remarkably, the C/N-ratios showed no substantial differences, whereas the C/P-ratios were significantly higher at the sandy site for all species. pH was significantly lower at the sandy site for all species, and among the species, pH was lower in the conifer forest floors than in the broadleave forest floors. The concentration of ammonium, nitrate and phosphate in the soil solution was much higher at the loamy site under all species showing a stronger microbial activity. It is therefore hypothesized that the differences in accumulation rates were, at least partly, caused by differences in the mineralization regimes. Strong root infiltration in the forest floors at the sandy site compared to almost none at the loamy site, is probably responsible for the differences in mineralization rate due to competition between the organic matter decomposers and the tree-roots/mycorrhiza for nutrients.

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References

  • Aber J D, Melillo J M, McClaugherty C A and Eshleman K N 1983 Potential sinks for mineralized nitrogen following disturbance in forest ecosystems. In Environmental Biogeochemistry. Ed. R Hallberg. pp 179–192. Ecological Bulletins 35, Stockholm.

  • Aber J D and Melillo J M 1982 Nitrogen immobilization in decaying hardwood leaf litter as a function of initial nitrogen and lignin content. Can. J. Bot. 60, 2263–2269.

    Google Scholar 

  • Alban D H 1982 Effects of nutrient accumulation by aspen, spruce, and pine on soil properties. Soil Sci. Soc. Am. J. 46, 853–861.

    Google Scholar 

  • Binkley D and Valentine D 1991 Fifty-year biogeochemical effects of green ash, white pine, and Norway spruce in a replicated experiment. For. Ecol. Manage. 40, 13–25.

    Google Scholar 

  • Blair J M 1988 Nitrogen, sulfur and phosphorus dynamics in decomposing deciduous leaf litter in the southern Appalachians. Soil Biol. Biochem. 20, 693–701.

    Google Scholar 

  • Bockheim J G, Jepsen E A and Heisey D M 1991 Nutrient dynamics in decomposing leaf litter of four tree species on a sandy soil in northwestern Wisconsin. Can. J. For. Res. 21, 803–812.

    Google Scholar 

  • Bockheim J G and Leide J E 1991 Foliar nutrient dynamics and nutrient-use efficiency of oak and pine on a low fertility soil in Wisconsin. Can. J. For. Res. 21, 925–934.

    Google Scholar 

  • Davies B E and Davies R I 1963 A simple centrifugation method for obtaining small samples of soil solution. Nature 198, 216–217.

    Google Scholar 

  • Dormaar J F 1990 Effect of active roots on the decomposition of soil organic matter. Biol. Fert. Soils 10, 121–126.

    Google Scholar 

  • Fernandez I J and Struchtemeyer R A 1984 Correlation between element concentrations in spruce foliage and forest soils. Commun. Soil Sci. Plant Anal. 15, 1243–1255.

    Google Scholar 

  • Gadgil R L and Gadgil P D 1971 Mycorrhiza and litter decomposition. Nature 233, 133.

    Google Scholar 

  • Gadgil R L and Gadgil P D 1975 Suppression of litter decomposition by mycorrhizal roots of Pinus radiata. N. Z. J. For. Sci. 5, 33–41.

    Google Scholar 

  • Gower S T and Son Y 1992 Differences in soil and leaf litter nitrogen dynamics for five forest plantations. Soil Sci. Soc. Am. J. 56, 1959–196.

    Google Scholar 

  • Hinds A A and Lowe L E 1980 Application of the berthelot reaction to the determination of ammonium-N in soil extracts and soil digests. Commun. Soil Sci. Plant Anal. 11, 469–475.

    Google Scholar 

  • Holmsgaard E and Bang C 1977 Et træartsforsøg med nåletræer, bøg og eg; de første 10 år. (A species trial with conifers, beech and oak; the first ten years). Det Forst. Forsøgsvaes. Dan. 35, 159–196.

    Google Scholar 

  • Liu J-C and Trüby P 1979 Bodenanalytische Diagnose von K-und Mg-Mangel in Fichtenbeständen (Picea abies Karst.). Z. Ptlanzenernähr. Bodenkd. 152, 307–311.

    Google Scholar 

  • Lundström U and Öhman L O 1990 Dissolution of feldspars in the presence of organic solutes. J. Soil Sci. 41, 359–370.

    Google Scholar 

  • Meentemeyer V and Berg B 1986 Regional variation in rate of mass loss of Pinus sylvestris needle litter in swedish pine forests as influenced by climate and litter quality. Scand. J. For. Res. 1, 167–180.

    Google Scholar 

  • Miller H G 1984 Dynamics of nutrient cycling in plantation ecosystems. In Nutrition of Plantation Forests. Eds. G DBowen and E K SNambiar. pp 53–78. Academic Press, London.

    Google Scholar 

  • Murphy J and Riley J P 1965 A modified single solution method for estimation of phosphate in natural matters. Anal. Chem. Acta 27, 3–36.

    Google Scholar 

  • Müller P E 1879 Studier over skovjord som bidrag til skovdyrkningens theori. Dansk Skovfor. Tidsk. 3, 1–125.

    Google Scholar 

  • Oksbjerg E 1954 Nogle foryngelsesproblemer.1. Om rodkonkurrence og rødders udvikling. Dansk Skovfor. Tidsk. 39, 93–113.

    Google Scholar 

  • Olson J S 1963 Energy storage and the balance of producers and decomposers in ecological systems. Ecology 44, 322–331.

    Google Scholar 

  • Ovington J D 1953 Studies of the development of woodland conditions under different trees. I. Soils pH. J. Ecol. 41, 13–34.

    Google Scholar 

  • Ovington J D 1954 Studies of the development of woodland conditions under different trees. II. The forest floor. J. Ecol. 42, 71–80.

    Google Scholar 

  • Pastor J, Aber J D, McClaugherty C A and Melillo J M 1984 Aboveground production and N and P cycling along a nitrogen mineralization gradient on Blackhawk Island, Wisconsin. Ecology 65, 256–268.

    Google Scholar 

  • Perala D A and Alban D H 1982 Biomass, nutrient distribution and litterfall in Populus, Pinus and Picea stands on two different soils in Minnesota. Plant and Soil 64, 177–192.

    Google Scholar 

  • Piper C S 1944 Soil and Plant Analysis. Interscience Publisher Inc., New York.

    Google Scholar 

  • Staaf H and Berg B 1982 Accumulation and release of plant nutrients in decomposing Scots pine needle litter. Long-term decomposition in a Scots pine forest II. Can. J. Bot. 60, 1561–1568.

    Google Scholar 

  • Stuanes A O, Ogner G and Opem M 1984 Ammonium nitrate as extrant for soil exchangeable cations, exchangeable acidity and aluminium. Commun. Soil Sci. Plant Anal. 15, 773–778.

    Google Scholar 

  • Witkamp M and Van DerDrift J 1961 Breakdown of forest litter in relation to environmental factors. Plant and Soil 15, 295–311.

    Google Scholar 

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Raulund-Rasmussen, K., Vejre, H. Effect of tree species and soil properties on nutrient immobilization in the forest floor. Plant Soil 168, 345–352 (1995). https://doi.org/10.1007/BF00029347

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