Soil moisture spatio-temporal behavior of Pinus pinaster stands on sandy flatlands of central Spain.

  • Valentin Gómez Sanz Universidad Politécnica de Madrid
  • J I Garcia-Viñas EUIT Forestales
Keywords: water availability, hydrological response unit, hydrological landscape, Mediterranean maritime pine

Abstract

Pinus pinaster stands in the center of the Iberian Peninsula frequently grow in a unique hydrological system characterized by a variable groundwater table near the soil surface and highly permeable soils (arenosols). Over the last few decades, this superficial aquifer has been overused as a water resource, especially for irrigated crops. Overuse has reached a critical level and has caused various environmental impacts and a water sustainability crisis wherein rainfall variability does not allow for a sufficient level of aquifer recharge by natural means. Within this changing scenario, soil water significantly affects the spatio-temporal ecological response, necessitating more extensive characterization of the complex soil-tree water relationship. The primary goal of the present work was to evaluate the influence of root zone soil moisture on the observed spatial response of Pinus pinaster stands. Volumetric soil moisture content was measured at eleven forest sites, using time-domain reflectometry (TDR), over a two-year observation period. The results demonstrate that the combined effect of groundwater table proximity and dune morphology associated with this area are the main factors driving very different water availability conditions among the monitored hydrological response units, which modulate maritime pine installation and development. Topographically lower areas are more heterogeneous in terms of soil moisture behavior. In these areas, the conifer forests that are connected to the water table may be the most sensitive to land use changes within current environmental change scenarios. Consequently, in these pine ecosystems, the combined influences of geomorphology and water table proximity on variations in root zone soil moisture are essential and must be considered to develop adequate adaptive management models.

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References

Barnes B.V., Zak D.R., Denton S.R., Spurr S.H., 1998. Forest ecology, 4th ed. John Wiley and Sons, Inc, New York, USA. 774 pp.

Beldring S., Gottschalk L., Seibert J., Tallaksen L.M., 1999. Distribution of soil moisture and groundwater levels at patch and catchments scales. Agricultural and Forest Meteorology 98-99, 305-324. http://dx.doi.org/10.1016/S0168-1923(99)00103-3

Bravo-Oviedo A., Río M., Montero G., 2004. Site index curves and growth model for Mediterranean mari time pine (Pinus pinaster Ait.) in Spain. Forest Ecol Manag 201, 187-197. http://dx.doi.org/10.1016/j.foreco.2004.06.031

Bravo-Oviedo A., Río M., Montero G., 2007. Geographic variation and parameter assessment in generalized algebraic difference site index modelling. Forest Ecol Manag 247, 107-119. http://dx.doi.org/10.1016/j.foreco.2007.04.034

Bürgi M., Hersperger A., Schneeberger N., 2004. Driving forces of landscape change – current and new directions. Landscape Ecology 19, 857-868. http://dx.doi.org/10.1007/s10980-004-0245-8

Ceballos A., Martínez-Fernández J., Santos F., Alonso P., 2002. Soil-water behaviour of Sandy soils under semi-arid conditions in the Duero Basin (Spain). Journal of Arid Environments 51, 501-519.

Chen Z., Grasby S.E., Osadetz K.G., 2002. Predicting average annual groundwater levels from climatic variables: an empirical model. Journal of Hydrology 260, 102-117. http://dx.doi.org/10.1016/S0022-1694(01)00606-0

Chen X., Hu Q., 2004. Groundwater influences on soil moisture and surface evaporation. Journal of Hydrology 297, 285-300. http://dx.doi.org/10.1016/j.jhydrol.2004.04.019

Danjon F., Bert D., Godin C., Trichet P., 1999. Structural root architecture of 5-year-old Pinus pinaster measured by 3D digitising and analysed with AMAPmod. Plant and Soil 217, 49-63. http://dx.doi.org/10.1023/A:1004686119796

Evett S.R., 2000. Energy and water balances at soil-plantatmosphere interfaces. In: Handbook of soil science (Sumner M.E., ed). CRC Press, New York, USA. pp. A129-A182.

Kimmins J.P., 1997. Forest ecology. Prentice-Hall, Upper Saddle River, New Jersey, USA. 720 pp.

Le Maitre D.C., Scott D.F., Colvin C., 1999. A review of information on interactions between vegetation and groundwater. Water SA 25(2), 137-152.

Lookingbill T., Urban D., 2004. An empirical approach towards improved spatial estimates of soil moisture for vegetation analysis. Landscape Ecology 19, 417-433. http://dx.doi.org/10.1023/B:LAND.0000030451.29571.8b

Mahmood R., Hubbard K.G., 2003. Simulating sensitivity of soil moisture and evapotranspiration under heterogeneous soils and land uses. Journal of hydrology 280, 72-90. http://dx.doi.org/10.1016/S0022-1694(03)00183-5

Mimam, 1998. Programa de ordenación de acuíferos sobreexplotados/ salinizados. Formulación de estudios y actuaciones. Serie Monografía. Madrid. 66 pp.

Nielsen P., Perrochet P., 2000. Water table dynamics under capillary fringes: experiments and modelling. Advances in Water Resources 23, 503-515. http://dx.doi.org/10.1016/S0309-1708(99)00038-X

Or D., Wraith J.M., 2000. Soil water content and water potential relationships. In: Handbook of soil science (Summer M.E., ed). CRC Press, New York, USA. pp. A53-A85.

Pastor J., Post W., 1988. Response of northern forests to CO2-induced climate change. Nature 334, 55-58. http://dx.doi.org/10.1038/334055a0

Paul K.I., Polglase P.J., O'connell A.M., Carlyle J.C., Smethurst P.J., Khanna P.K., Worledge D., 2003. Soil water under forests (SWUF): a model of water flow and soil water content under a range of forest types. Forest Ecology and Management 182, 195-211. http://dx.doi.org/10.1016/S0378-1127(03)00048-3

Rodríguez-Iturbe I., Porporato A., 2004. Ecohydrology of water-controlled ecosystems. Soil moisture and plant dynamics. Cambridge University Press, New York, USA. 442 pp.

Ronen D., Scher H., Blunt M., 2000. Field observations of a capillary fringe before and after a rainy season. Journal of Contaminant Hydrology 44, 103-118. http://dx.doi.org/10.1016/S0169-7722(00)00096-6

Santos, F., 1979. Estudio edafológico del Sector Montiel-Alcaraz-Bienservida (Ciudad Real-Albacete).Vol II. Estudio edafológico. Tesis doctoral. Universidad de Granada.

Thompson J.C., Moore R.D., 1996. Relations between topography and water table depth in shallow forest soil. Hydrological Processes 10, 1513-1525. http://dx.doi.org/10.1002/(SICI)1099-1085(199611)10:11<1513::AID-HYP398>3.0.CO;2-V

Westerman R., Raun W.R., Johnson G.V., 2000. Nutrient and water use efficiency. In: Handbook of soil science (Summer M.E., ed). CRC Press, New York, USA. pp. D175-D189.

Winter T.C., 2001. The concept of hydrological landscapes. Journal of the American Water Resources Association 37(2), 335-349. http://dx.doi.org/10.1111/j.1752-1688.2001.tb00973.x

Published
2011-07-10
How to Cite
Gómez Sanz, V., & Garcia-Viñas, J. I. (2011). Soil moisture spatio-temporal behavior of Pinus pinaster stands on sandy flatlands of central Spain. Forest Systems, 20(2), 293-302. https://doi.org/10.5424/fs/2011202-11186
Section
Research Articles