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Temporal and spatial variability in soil nutrient status of a former beach plain

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Abstract

As part of a research project on the variation in life-history characteristics within a population of Plantago major L. ssp. pleiosperma, seasonal and spatial variability in the availability of macronutrients (N, P, and K) were examined on a small scale in the 0–25 cm soil depth at a primary beach plain site, embanked since 1966. On the basis of distinct differences, among other things, in plant biomass, an a priori division into three different types of microhabitat occurring in a mosaic distribution pattern was made: an overall low-lying area (subsite 1) with slightly elevated patches of 0.5 to 1.5 m in diameter (subsite 2) and rather large patches, 20 to 40 m in diameter, of sea buckthorn shrubs, with small and relatively open spots (subsite 3) in the transitional zone from lower area into scrub. All three subsite types were studied within a total area of approximately 2000 m2.

Three methods of analysis were applied: an inventory survey (sampling once at the start of the growing season), an analysis of the seasonal variation (sampling at approximately monthly intervals during the period April-November), and an assessment of nitrogen mineralization potentials in the laboratory (sampling once at the beginning of the growing season). All three procedures clearly demonstrated the occurrence of differences in the availability of nutrients over very short distances, i.e. a pronounced spatial variability among subsites. Particularly the availability of N and P appeared to have increased at the subsites 2 and 3, when compared to subsite 1. This small-scale differentiation in soil properties has occurred in an essentially homogeneous parent material (e.g. in texture and carbonate content) over a period of about 20 years.

Besides a spatial variability, statistically significant temporal fluctuations were observed in the availability of N, P, and K. Relative fluctuations of mineral N (as indicated by the range/mean ratio) were especially large at the subsites 2 and 3.

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References

  • Abbott, J L 1978 Importance of the organic phosphorus fraction in extracts of calcareous soil. Soil Sci. Soc. Am. J. 42, 81–85.

    Article  CAS  Google Scholar 

  • Ball, D F and Williams, W M 1968 Variability of soil chemical properties in two uncultivated brown earths. J. Soil Sci. 19, 379–391.

    CAS  Google Scholar 

  • Bowman, R A and Cole, C V 1978a Transformations of organic phosphorus substrates in soils as evaluated by NaHCO3 extraction. Soil Sci. 125, 49–54.

    Article  CAS  Google Scholar 

  • Bowman, R A and Cole, C V 1978b An exploratory method for fractionation of organic phosphorus from grassland soils. Soil Sci. 125, 95–101.

    CAS  Google Scholar 

  • Cole, C V, Innis, G S and Stewart, J W B 1977 Simulation of phosphorus cycling in semi-arid grasslands. Ecology 58, 1–15.

    Article  CAS  Google Scholar 

  • Davies, B E 1974 Loss-on-ignition as an estimate of soil organic matter. Soil Sci. Soc. Am. Proc. 38, 150–151.

    Article  Google Scholar 

  • Davy, A J and Taylor, K 1974 Seasonal patterns of nitrogen availability in contrasting soils in the Chiltern Hills. J. Ecol. 62, 793–807.

    Article  CAS  Google Scholar 

  • DeJager, A and Posno, M 1979 A comparison of the reaction to a localized supply of phosphate in Plantago major, Plantago lanceolata and Plantago media. Acta Bot. Neerl. 28, 479–489.

    Google Scholar 

  • Friesen, D K, Blair, G J and Duncan, M 1985 Temporal fluctuations in soil test values under permanent pasture in New England, NSW. Aust. J. Soil Res. 23, 181–193.

    Article  Google Scholar 

  • Gupta, P L and Rorison, I H 1975 Seasonal differences in the availability of nutrients down a podzolic profile. J. Ecol. 63, 521–534.

    Article  CAS  Google Scholar 

  • Haines, S G and Cleveland, G 1981 Seasonal variation in properties of five forest soils in southwest Georgia. Soil Sci. Soc. Am. J. 45, 139–143.

    Article  CAS  Google Scholar 

  • Halm B J, Stewart J W B and Halstead R L 1972 The phosphorus cycle in a native grassland ecosystem. In Isotopes and Radiation in Soil-Plant Relationships including Forestry. Proc. Symp. IAEA, pp 571–586.

  • Harrison, A F 1979 Variation of four phosphorus properties in woodland soils. Soil Biol. Biochem. 11, 393–403.

    Article  CAS  Google Scholar 

  • Kachi, N and Hirose, T 1983 Limiting nutrients for plant growth in coastal sand dune soils. J Ecol. 71, 937–944.

    Article  Google Scholar 

  • Keeney D R and Nelson D W 1982 Nitrogen-inorganic forms. In Methods of Soil Analysis, Part 2 (2nd edition). Eds. A L Page et al. pp 643–698. Agronomy 9.

  • Kempers, A J 1974 Determination of sub-microquantities of ammonium and nitrates in soils with phenol, sodium-nitroprusside and hypochlorite. Geoderma 12, 201–206.

    Article  CAS  Google Scholar 

  • Lotz, L A P and Blom, C W P M 1986 Plasticity in life-history traits of Plantago major L. ssp. pleiosperma Pilger. Oecologia 69, 25–30.

    Article  Google Scholar 

  • McGarity, J W and Myers, R J K 1973 Seasonal trends in content of mineral nitrogen in solodized solonetz soil. Aust. J. Exp. Agric. Anim. Husb. 13, 423–429.

    Article  CAS  Google Scholar 

  • Mengel, K and Kirkby, E A 1987 Principles of Plant Nutrition (4th edition). International Potash Institute, Bern.

    Google Scholar 

  • Novozamsky, I, Houba, V J G, Temminghoff, E and Van der Lee, J J 1984 Determination of ‘total’ N and ‘total’ P in a single soil digest. Neth. J. Agric. Sci. 32, 322–324.

    Google Scholar 

  • Olsen S R, Cole C V, Watanabe F S and Dean L A 1954 Estimation of available phosphorus in soils by extraction with sodium bicarbonate. USDA Circ 939.

  • PatrickJr, W H and Mikkelsen, D S 1971 Plant nutrient behavior in flooded soil. In Fertilizer Technology and Use (2nd edition). Eds. R AOlsonet al. pp 187–215. SSSA, Madison, WI.

    Google Scholar 

  • Peterson, D L and Hammer, R D 1986 Soil nutrient flux: a component of nutrient cycling in temperate forest ecosystems. For. Sci. 32, 318–324.

    Google Scholar 

  • Peterson, D L and Rolfe, G L 1982 Seasonal variation in nutrients of flood plain and upland forest soils of central Illinois. Soil Sci. Soc. Am. J. 46, 1310–1315.

    Article  CAS  Google Scholar 

  • Peterson, D L and Rolfe, G L 1985 Temporal variation in nutrient status of a floodplain soil. For. Ecol. Manage. 12, 73–82.

    Article  Google Scholar 

  • Saunders, W M H and Metson, A J 1971 Seasonal variation of phosphorus in soil and pasture. N. Z. J. Agric. Res. 14, 307–328.

    CAS  Google Scholar 

  • Snaydon, R W 1970 Rapid population differentiation in a mosaic environment. 1. The response of Anthoxanthum odoratum populations to soils. Evolution 24, 257–269.

    Article  Google Scholar 

  • Taylor, A A, De-Felice, J and Havill, D C 1982 Seasonal variation in nitrogen availability and utilization in an acidic and calcareous soil. New Phytol. 92, 141–152.

    Article  CAS  Google Scholar 

  • Troelstra, S R 1983 Growth of Plantago lanceolata and Plantago major on a NO3/NH4 medium and the estimation of the utilization of nitrate and ammonium from ionic-balance aspects. Plant and Soil 76, 183–197.

    Article  Google Scholar 

  • Troelstra, S R, Smant, W and Wagenaar, R 1983 Different P and K requirements for Plantago major ssp. major and Plantago lanceolata? Institutes of the Royal Netherlands Academy of Arts and Sciences, Progr. Rep. Inst. Ecol. Res. 81. Elsevier-Holland, Amsterdam.

    Google Scholar 

  • Troelstra, S R, Blacquière, T, Wagenaar, R and VanDijk, C 1987 Ionic balance, proton efflux, nitrate reductase activity and growth of Hippophaë rhamnoides L. ssp rhamnoides as influenced by combined-N nutrition or N2 fixation. Plant and Soil 103, 169–183.

    Article  CAS  Google Scholar 

  • Vaughn, C E, Center, D M and Jones, M B 1986 Seasonal fluctuations in nutrient availability in some northern California annual range soils. Soil Sci. 141, 43–51.

    CAS  Google Scholar 

  • Veresoglou, D S and Fitter, A H 1984 Spatial and temporal patterns of growth and nutrient uptake of five co-existing grasses. J. Ecol. 72, 259–272.

    Article  CAS  Google Scholar 

  • Watanabe, F S and Olsen, S R 1965 Test of an ascorbic acid method for determining phosphorus in water and NaHCO3 extracts from soil. Soil Sci. Soc. Am. Proc. 29, 677–678.

    Article  CAS  Google Scholar 

  • Williams, J T 1969 Mineral nitrogen in British grassland soils. I. Seasonal patterns in simple models. Oecol. Plant. 4, 307–320.

    Google Scholar 

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Troelstra, S.R., Lotz, L.A.P., Wagenaar, R. et al. Temporal and spatial variability in soil nutrient status of a former beach plain. Plant Soil 127, 1–12 (1990). https://doi.org/10.1007/BF00010831

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