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Effects of a heather beetle attack on soil moisture and water balance at a Danish heathland

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Abstract

The effects of reclamation and high atmospheric nitrogen deposition have for long threatened the existence of heathlands in Denmark. A high nitrogen input increases the frequency and intensity of heather beetle attacks. However, any indirect effects of these attacks on the soil water balance are seldom investigated. In autumn 1994 a 2000-year old Danish inland heath was struck by a severe heather beetle attack and the effects on the soil moisture and the water balance were studied. Soil water content, gross precipitation and throughfall were measured continuously from 1993 to 1998 at the heath. The first signs of the attack on the water balance were seen in the dry summer of 1995 when the soil water content was relatively high. Four years after the beetle attack, new heather plants covered the area again and during summer the soil water seemed to be depleted to the same degree as before the beetle attack. In the years after the beetle attack a high coefficient of variation between individual soil moisture measurements was seen. It is proposed that the inhomogeneous wetting was caused by heterogeneous throughfall, water-repellent soil and break down of the structure of the organic top-horizons due to the beetle attack. The effect of the beetle attack was examined using a simple water balance model. Model simulations showed that evapotranspiration was reduced by respectively, 14, 29 and 5% in the three years following the beetle attack. From 1993 to 1998 percolation was on average 62% of precipitation with very little variation from year to year. Evapotranspiration was on average 38%, but in the years affected most by the beetle attack transpiration was relatively low whereas evaporation from soil was increased. A comparison between the modelled and measured throughfall, as well as percolation estimated by the chloride mass balance method, showed that the water balance parameters were estimated well in the two years which were most affected by the beetle attack, i.e. 1995 and 1996.

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References

  • Aerts R 1993 Competition between dominant plant species in heathlands. In Heathlands: Patterns and processes in a changing environment. Eds. R Aerts and GW Heil. pp 125–152. Geobotany 20. Kluwer Academic Publishers.

  • Alonso I and Hartley S E 1998 Effects of nutrient supply, light availability and herbivory on the growth of heather and three competing grass species. Plant Ecology 137, 203–212.

    Google Scholar 

  • Beier C 1998 Water and element fluxes calculated in a sandy forest soil taking spatial variability into account. For. Ecol. Manage. 101, 269–280.

    Google Scholar 

  • Beier C, Rammussen L, Pilegaard K, Ambus P, Mikkelsen T, Jensen N O, Kjøller A and Ladekarl U L 2000 Fluxes of NO3 _, NH4 +, NO, NO2 and N2O in an old Danish beech forest. Soil, Water and Air Pollution (In press).

  • Berdowski J J M, 1993 The effect of external stress and disturbance factors on Calluna-dominated heathland vegetation. In Heathlands: patterns and processes in a changing environment. Eds. R Aerts and G W Heil. pp 85–124. Geobotany 20. Kluwer Academic Publishers.

  • Bisdom E B A, Dekker L W and Schoute J F Th 1993 Water repellency of sieve fractin from sandy soils and relationships with organic material and soil structure. Geoderma 56, 105–118.

    Google Scholar 

  • Bobbink R and G W Heil 1993 Atmospheric deposition of sulphur and nitrogen in heathland ecosystems. In Heathlands: Patterns and processes in a changing environment. Eds. R Aerts and G W Heil. pp 25–50. Geobotany 20. Kluwer Academic Publishers.

  • Dekker L W and Ritsema C J 1994 How water moves in a water repellent sandy soil. 1. Potential and actual water repellency. Water Resour. Res. 30(9), 2507–2517.

    Google Scholar 

  • Gordon C, Woodin S J, Alexander I J and Mullins C E 1999 Effects of increased temperature, drought and nitrogen supply on two upland perennials of contrasting type: Calluna vulgaris and Pteridium aquilinum. New Phytologist 142, 243–258.

    Google Scholar 

  • Hall R L 1985 Further interception studies of heather using a wetsurface weighing lysimeter system. J. Hydrology 81, 193–210.

    Google Scholar 

  • Hansen B and Nielsen K E 1998 Comparison of acidic deposition to semi-natural ecosystems in Denmark - coastal heath, inland heath and oak wood. Atmospher. Environ. 32(6) 1075–1086.

    Google Scholar 

  • Hansen B, Nørnberg P and Ladekarl U L 1999 Acidification of the sandy percolation zones under heathland and oak wood in Denmark. For. Ecol. Manage. 114, 137–150.

    Google Scholar 

  • Hendrickx J M H and Yao T-M 1996 Prediction of wetting front stability in dry field soils using soil and precipitation data. Geoderma 70, 265–280.

    Google Scholar 

  • Herkelrath WN, Hamburg S P and Murphy F 1991 Automatic, realtime monitoring of soil moisture in a remote field area with time domain reflectometry. Water Resour. Res. 27(5) 857–864.

    Google Scholar 

  • Hillel D 1998 Environmental Soil Physics. pp 464–470. Academic Press.

  • Jensen S E 1979 Model ETFOREST for calculating actual evapotranspiration. In Comparison of forest water and energy exchange models. Developments in agricultural and managedforest ecology 9. Ed. S Halldin. pp 165–172. Elsevier Scientific Publishing Company.

  • Kung K-J S 1990 Preferential flow in a sandy vadose zone: 2. Mechanism and implications. Geoderma 46, 59–71.

    Google Scholar 

  • Ladekarl U L 1998 Estimation of the components of soil water balance in a Danish oak stand from measurements of soil moisture using TDR. For. Ecol. Manage. 104, 227–238.

    Google Scholar 

  • Leyton L, Reynolds R C and Thompson F B 1967 Rainfall interception in forest and moorland. In Forest Hydrology. Eds. W E Sopper and H W Lull. pp 163–177. Symposium Publications Division, Pergamon Press.

  • Magid J, Christensen N and Skop E 1994 Vegetation effects on soil solution compostition and evapotranspiration - potential impacts of set-aside policies. Agric. Ecosystems Environ. 49, 267–278.

    Google Scholar 

  • Mikkelsen H E and Olesen J E 1991 Sammenligning af metoder til bestemmelse af potentiel vandfordampning. Tidsskrift for Planteavls Specialserie. Beretning nr. S2157, 67 p. (In Danish).

  • Monteith J L and Unsworth M 1990 Principles of Environmental Physics. Second Edition. Edward Arnold, London, New York, Sydney, Auckland.

    Google Scholar 

  • Mossin L A 1999 Changes in the chemical composition of soil water during percolation through a podzolic profile. Progress report, Dept. of Earth Sciences, University of Aarhus, Denmark, 48 p.

    Google Scholar 

  • Nielsen K E, Hansen B, Ladekarl U L and Nørnberg P 2000 Effects of N-deposition on ion trapping by B-horizons of Danish heathlands. Plant Soil. 223, 265–276.

    Google Scholar 

  • Nørnberg P 1995 The heath project (ecological processes in Danish heathlands and their relationship to the atmospheric environment): I. Field sites, history, geology and soils. Aarhus Geoscience, University of Aarhus, 4, 83–91.

    Google Scholar 

  • Odgaard B 1994 The holocene vegetation history of northern west Jutland, Denmark. Opera Botanica 123,171.

  • Perrone P A and Gant J R 1984 Advances in anion analysis: Reversed-phase ion-pair chromatography with indirect photometric detection. The Perkin-Elmer Corporation, Norwalk, CT 06856, USA.

    Google Scholar 

  • Riis-Nielsen T 1997 Effects of nitrogen on the stability and dynamics of Danish heathland vegetation. Ph.D. Thesis, Department of Plant Ecology, University of Copenhagen, 183 p.

  • Ritsema C J, Dekker LW, Nieber J L and Steenhuis T S 1998 Modeling and field evidence of finger formation and finger recurrence in a water repellent sandy soil.Water Resour Res. 34(4) 555–567.

    Google Scholar 

  • Thomsen A and Hougård H 1995 Field variability in crop development and water balance. In Proceedings of the Seminar on Site Specific Farming. Ed. S E Olesen. pp 90–98. Danish Institute of Plant and Soil Science. SP report 26.

  • Thomsen A and Bille-Hansen J 1998 TDR measurements and modelling of spruce evaporation. 4th International Workshop on Measuring Sap Flow in Intact Plants, pp 94–99. IUFRO Publications, Publishing house of Mendel University, Brno, Czech Republic.

    Google Scholar 

  • Topp G C, Davis J L and Annan A P 1980 Electromagnetic determination of soil water content: measurements in coaxial transmissin lines. Water Resour. Res. 16, 574–582.

    Google Scholar 

  • Wallace J S, Roberts J M and Roberts A M 1982 Evaporation from heather moorland in North Yorkshire, England. Proc. Symp. Hydrolog. Research Basins. Sonderb, pp 397–405. Landeshyrologie, Bern.

    Google Scholar 

  • Wood W W 1999 Use and Misuse of the Chloride-Mass Balance Method in Estimating Ground Water Recharge. Ground Water 37(1) 2–3.

    Google Scholar 

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Ladekarl, U., Nørnberg, P., Rasmussen, K. et al. Effects of a heather beetle attack on soil moisture and water balance at a Danish heathland. Plant and Soil 229, 147–158 (2001). https://doi.org/10.1023/A:1004887007230

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