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Nitrogen mineralization and nitrification in four Minnesota old fields

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Summary

Nitrogen availability and its response to fertilizer amendments was measured by in situ incubation in four old fields ranging in age from 16 to >100 years at Cedar Creek Natural History Area. Net nitrogen mineralization in control plots increased with field age, from 4.4 g/m2 in the youngest field to 6.5 g/m2 in the oldest field. The proportion of total N mineralized decreased with field age, from 6.2% of total N mineralized in the youngest field to 4.8% mineralized in the oldest field, suggesting a decrease in organic matter quality with time. Unlike many forests in the region, nitrogen mineralization was correlated with total soil nitrogen content. Greater than 90% of the mineralized N was nitrified in most months. Analyses of variance indicate significant effects of field age and month of year on N mineralization and nitrification, but not effect of fertilizer treatment except in the oldest field. Fertilizer additions did not significantly increase standing pools of mineral N in the youngest or oldest fields but did in the 26 and 50 year old fields. However, changes in mineral N pools did not account for the amount added in fertilizer. Strong plant and microbial sinks for fertilizer and possibly leaching losses may be the reasons why fertilizer additions did not stimulate N mineralizations during the first two years in most fields.

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References

  • Bernhard-Reversat F (1982) Biogeochemical cycling of nitrogen in a semi arid savanna. Oikos 38:321–332

    Google Scholar 

  • Billings WD (1938) The structure and development of old field shortleaf pine stands and certain associated physical properties of the soil. Ecol Monogr 8:437–499

    Google Scholar 

  • Bingeman CW, Varner JE, Martin WP (1953) The effect of addition of organic materials on the decomposition of an organic soil. Soil Science Society of America Proceedings 17:34–38

    Google Scholar 

  • Eno CF (1960) Nitrate production in the field by incubating the soil in polyethylene bags. Soil Sci Soc Am Proc 24:277–299

    Google Scholar 

  • Gay CW, Dwyer DD (1965) Effect of one year's nitrogen fertilization on native vegetation under clipping and burning. J Range Manage 18:273–277

    Google Scholar 

  • Grigal DF, Chamberlain LM, Finney HR, Wroblewski DV, Gross ER (1974) Soils of the Cedar Creek Natural History Area. Miscellaneous Report 123, University of Minnesota Agricultural Experiment Station, Saint Paul, Minnesota, USA

    Google Scholar 

  • Huffine WW, Elder WC (1960) Effect of fertilizer on native grass pastures in Oklahoma. J Range Manage 13:34–36

    Google Scholar 

  • Hurlbert SH (1984) Pseudoreplication and the design of ecological field experiments. Ecol Monog 54:187–211

    Google Scholar 

  • Inouye RS, Huntly NJ, Tilman D, Tester JR, Stillwell MA, Zinnel KC (1987) Old field succession on a Minnesota sand plain. Ecology (in press)

  • Jansson SL, Persson J (1982) Mineralization and immobilization of soil nitrogen. In: Stevenson FJ (ed) Nitrogen in agricultural soils. American Society of Agronomy, Madison, Wisconsin, USA pp 229–252

    Google Scholar 

  • Lawes J, Gilbert J (1880) Agricultural, botanical and chemical results of experiments on the mixed herbage of permanent grassland, conducted for many years in succession on the same land. I. Philoso Trans R Soc 171:189–416

    Google Scholar 

  • McClaugherty CA, Pastor J, Aber JD, Melillo JM (1985) Forest litter decomposition in relation to soil nitrogen dynamics and litter quality. Ecology 66:266–275

    Google Scholar 

  • Milton W (1934) The effect of controlled grazing and manuring on natural hill pastures. Welsh J Agric 10:192–211

    Google Scholar 

  • Nadelhoffer KJ, Aber JD, Melillo JM (1983) Leaf-litter production and soil organic matter dynamics along a nitrogen-availability gradient in southern Wisconsin (USA). Canad J For Res 13:12–21

    Google Scholar 

  • Odum EP (1960) Organic production and turnover in old field succession. Ecology 41:34–49

    Google Scholar 

  • Olson RV (1980) Fate of taged nitrogen fertilizer applied to irrigated corn. Soil Sci Soc Am J 44:514–517

    Google Scholar 

  • Olson RV, Murphy LS, Moser HC, Swallow CW (1979) Fate of tagged fertilizer nitrogen applied to winter wheat. Soil Sci Soc Am J 43:973–975

    Google Scholar 

  • Owensby CE, Hyde RW, Anderson KL (1970) Effects of clipping and supplemental nitrogen and water on loamy upland bluestem range. J Range Manage 23:341–346

    Google Scholar 

  • Parton WJ, Perrson J, Anderson DW (1983) Simulation of organic matter in Swedish soils. In: Lauenroth LW, Skogerbe GV, Flug M (eds) Analysis of Ecological Systems: State of the Art in Ecological Modeling. Elsevier Scientific Publishing Co., Amsterdam, Netherlands pp 511–516

    Google Scholar 

  • Pastor J, Aber JD, McClaugherty CA, Melillo JM (1984) Aboveground production and N and P cycling along a nitrogen mineralization gradient on Blackhawk Island, Wisconsin. Ecology 65:256–268

    Google Scholar 

  • Pastor J, Stillwell MA, Tilman D Little bluesterm litter dynamics in Minnesota old fields. Oecologia (in review).

  • Pierce RL (1954) Vegetation cover types and the land use history of Cedar Creek Natural History Reservation, Anoka and Isanti Counties, Minnesota. MS Thesis, University of Minnesota, Minneapolis, Minnesota USA

    Google Scholar 

  • Rice EL, Penfound WT, Rohrbaugh LM (1960) Seed dispersal and mineral nutrition in succession in abandoned fields in central Oklahoma. Ecology 41:224–228

    Google Scholar 

  • Robertson GP, Vitousek PM (1981) Nitrification potentials in primary and secondary succession. Ecology 62:376–386

    Google Scholar 

  • Schimel D, Stillwell MA, Woodmansee RG (1985) Biogeochemistry of C, N, and P in a soil catena of the shortgrass steppe. Ecology 66:276–282

    Google Scholar 

  • Swift MJ, Heal OW, Anderson JM (1979) Decomposition in terrestrial ecosystems. University of California Press, Berkeley, California

    Google Scholar 

  • Technicon (1977) Nitrate and nitrite in water and seawater. Industrial Method 329-74 W/B. Technicon Industrial Systems, Tarrytown, New York

    Google Scholar 

  • Technicon (1978) Ammonia in water and seawater. Industrial Method 154-71 W/B. Technicon Industrial Systems, Tarrytown, New York

    Google Scholar 

  • Tilman D (1983) Plant succession and gopher disturbance along an experimental gradient. Oecologia (Berlin) 60:285–292

    Google Scholar 

  • Tilman D (1984) Plant dominance along an experimental gradient. Ecology 65:1445–1453

    Google Scholar 

  • Tilman D (1985) The resource ratio hypothesis of succession. Am Nat 125:827–852

    Google Scholar 

  • Tilman D (1986) Nitrogen-limited growth in plants from different successional stages. Ecology 67:555–563

    Google Scholar 

  • Vitousek PM, Matson PA (1985) Disturbance, nitrogen availability, and nitrogen losses in an intensively managed loblolly pine plantation. Ecology 66:1360–1376

    Google Scholar 

  • Westerman DT, Crothers SE (1980) Measuring soil nitrogen mineralization under field conditions. Agrono J 72:1009–1012

    Google Scholar 

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Pastor, J., Stillwell, M.A. & Tilman, D. Nitrogen mineralization and nitrification in four Minnesota old fields. Oecologia 71, 481–485 (1987). https://doi.org/10.1007/BF00379285

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