Changes in point and non-point sources phosphorus loads in the Thau catchment over 25 years (Mediterranean Sea — France)

  • I. La Jeunesse
  • J. M. Deslous-Paoli
  • M. C. Ximénès
  • J. P. Cheylan
  • C. Mende
  • C. Borrero
  • L. Scheyer
Part of the Developments in Hydrobiology book series (DIHY, volume 164)

Abstract

In Thau coastal lagoon, phosphate concentrations have decreased by 89% from 1971 to 1994. The present relatively long term (over 25 years) study compares changes in the contribution of point (PS) and non-point sources (NPS) total phosphorus (P) loads. The analysis of the distribution of the sources in comparison with the changes in the phosphate concentrations in the Thau lagoon aims to point out their relative impact in order to create a sustainable management plan for this system. This is needed, firstly because water quality supports shellfish farming, which is the main economical activity of the basin. Secondly, because the population is planned to increase by 40% between 1995 and 2020 thus leading to an increase of urban pressures. PS P loads, represented by discharges by wastewater treatment plants, have increased by 143% while NPS P loads, both represented by export from lands and loads from non-connected population, have decreased by 64%. Despite important changes in land-use by an exceptional decrease of vineyards areas (—12.5%), domestic effluents main contribute (>60%) to both PS and NPS P loads and seem to be more implicated in the decrease of phosphate concentrations in the Thau lagoon, probably because of the different phosphorus forms engaged.

Key words

phosphorus loads point source non-point source land-use erosion GIS Thau lagoon catchment Mediterranean coast 

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References

  1. Andrieux, P., X. Louchant, M. Voltz, 1998. Effects of agricultural practises on runoff and erosion in vineyards fields in a Mediterranean climate. UISS - 16ème Congrès Mondial de Science du Sol, Montpellier.Google Scholar
  2. Benkhadra, H., 1997. Battance, ruissellement et érosion diffuse sur les sols limoneux cultivés. Déterminisme et transfert d’échelle de la parcelle au petit bassin versant. Thèse de l’Université d’Orléans: 201 pp.Google Scholar
  3. Bolton, S. M., T. J. Ward, 1993. Scale effects of sediment-related transport of phosphorus. Wat. Sci. Tech. 28 (3–5): 473–481.Google Scholar
  4. Bouchardy, J. Y.. 1992. Méthodologie pour la spatialisation des zones sensibles à la pollution diffuse agricole par le phosphore à l’aide de la télédetection et des SIG. Thèse de doctorat. Université de Grenoble I: 261 pp.Google Scholar
  5. Comlan, P., 1996. Enrichissement en phosphore des sols d’un bassin versant, Ingénieries–EAT 7: 13–20.Google Scholar
  6. Deslous-Paoli, J. M., P. Souchu, N. Mazouni, C. Juge, F. Dagault, 1998. Relations milieu-ressources: impact de la conchyliculture sur un environnement lagunaire méditerranéen (Thau), Oceanol. Acta 21 (6): 831–843.Google Scholar
  7. Dillon, P. J., W. B. Kirchner, 1975. The effects of geology and land-use on the export of phosphorus from watersheds. Wat. Res. 9: 135–148.Google Scholar
  8. Dorioz, J. M., D. Trévisan, J. Y. Vansteelant, 1997. Transferts diffus de phosphore des bassins versants agricoles vers les lacs: impacts, ordre de grandeur, mécanismes. In Riou, C., R. Bonhomme, P. Chavin, A. Neveu, F. Papy, (eds), L’eau Dans l’espace Rural: Production Végétale et Qualité de l’eau (15): 249–264. INRA, Paris: 411 pp.Google Scholar
  9. Dorioz, J. M., J. P. Pelletier, P. Benoit, 1998. Physico-chemical properties and bioavailability of particulate phosphorus of various origin in a catchment of Lake Geneva (France). Wat. Res. 32 (2): 275–286.CrossRefGoogle Scholar
  10. Frisoni, G. E, 1987. L’influence du bassin versant sur le fonctionnement des lagunes méditerranéennes–Concept d’eutrophisation et de confinement–Exemple d’application: l’étang de Sanga Giulia (Corse). Bulletin d’Ecologie 18 (2): 169–175.Google Scholar
  11. Garrabé, M., C. Cabassut, 1989. Evaluation économique d’un cas de dystrophie lagunaire. CEP. Faculté de Droit et de Sciences Economiques, Montpellier: 68 pp.Google Scholar
  12. Gburek, W. J., A. N. Sharpley, H. B. Pionke, 1996. Identification of critical source areas for phosphorus export from agricultural catchments. Advances in Hillslope Processes, Vol. 1: 263–282.Google Scholar
  13. Johnson, A. H., D. R. Bouldin, E. A. Goyette, A. H. Hedges, 1976. Phosphorus loss by stream transport from a rural watershed quantities, processes and sources. J. Envir. Qual. 5(2): 1 17–222.Google Scholar
  14. La Jeunesse, 1., M. C. Ximénès, J. M. Deslous-Paoli, 1999. Evolution of human activities and water quality–The case of Thau coastal lagoon and its catchment (Mediterranean Sea, France), Symposium Acta: Coastal Zone 99, San Diego (U.S.A.: CA), The People–The Coast–The Ocean: 449–451.Google Scholar
  15. La Jeunesse, I., 2001. Etude intégrée dynamique du phosphore dans le système bassin versant - lagune de Thau, Mer méditerranée, France. Thèse de Doctorat de l’Université d’Orléans: 399 pp.Google Scholar
  16. Lenzi, M. A., M. Di. Luzio, 1997. Surface runoff. soil erosion and water quality modelling in the Alpone watershed using AGNPS integrated with a Geographic Information System. Eur. J. Agron. 6: 1–14.Google Scholar
  17. Mazouni, N., J. C. Gaertner, J. M. Deslous-Paoli, S. Landrein, M. Geringer D’Odenberg, 1996. Nutrient and oxygen exchanges at the water-sediment interface in a shellfish farming lagoon (Thau, France). J. exp. mar. Biol. Ecol. 203 (2): 92–113.Google Scholar
  18. Norvell, W. A., C. R. Frink, D. E. Hill, 1979. Phosphorus in Connecticut lakes predicted by land-use. Proc. natl. Acad. Sci. 76: 5426–5429.Google Scholar
  19. Olsen, S. R., C. V. Cole, F. S. Watanabe, L. A. Dean, 1954. Estimation of available phosphorus in soil by extraction with sodium bicarbonate. Circular no. 939, USDA, Washington: 19 pp.Google Scholar
  20. Osborne, L. L., M. J. Wiley, 1988. Empirical relationships between land-use/cover and stream water quality in an agricultural watershed. J. Env. Manage. 26: 9–27.Google Scholar
  21. Philippi, L. S., A. Rambaud, H. Philip, C. Casellas, 1992. Fonctionnement de fosses septiques en conditions réelles–Enquête prospective durant 3 ans sur un parc de 33 installations dans le département de l’Hérault, T.S.M.–L’Eau 87 (12): 611–617.Google Scholar
  22. Pihan, J., 1979. Risques climatiques d’érosion hydrique des sols en France. Colloque sur l’érosion agricole des sols en milieu tempéré non méditerranéen. Doc. INRA, Colmar: 9–13.Google Scholar
  23. Pote, D. H., T. C. Daniel, D. J. Nichols, P. A. Moore, D. M. Miller, D. R. Edwards, 1999. Seasonal and soil-drying effects on runoff phosphorus relationships to soil phosphorus. Soil Sci. Soc. am. J. 63 (4): 1006–1012.CrossRefGoogle Scholar
  24. Reckhow, K. H., J. T. Simpson, 1980. A procedure using modelling and error analysis for prediction of lake phosphorus concentration from land use information. Can. J. Fish. aquat. Sci. 37: 1439–1448.Google Scholar
  25. Robbez Masson, J. M., J. P. Barthes, M. Bornand, P. Falipou, J. P. Legros, 2000. Bases de données pédologiques et systèmes d’informations géographiques. L’exemple de la région Languedoc-Roussillon. Forêt Méditerranée 21 (1): 88–98.Google Scholar
  26. Sharpley, A. N., S. J. Smith, J. W. Naney, 1987. The environmental impact of agricultural nitrogen and phosphorus use. J. Agric. Food Chem. 36: 812–817.Google Scholar
  27. Sharpley, A. N., T. C. Daniel, D. R. Edwards, 1993. Phosphorus movement in the landscape. J. Proc. Agric. 3 (4): 492–500.CrossRefGoogle Scholar
  28. SIEE (Société d’Ingénierie pour l’Eau et l’Environnement), 1992. Contrat pour l’étang de Thau. Inventaire des foyers de pollution. Cemagref, Montpellier: I 1 1 pp.Google Scholar
  29. Svendsen, L. M., K. Brian, P. Kristensen, P. Graesbol, 1995. Dynamics of phosphorus compounds in a lowland river system: importance of retention and non-point sources. Hydrol. Process. 9: 119–142.Google Scholar
  30. Tim, U. S., S., Mostaghimi, V. O. Shanholtz, 1992. Identification of critical non-point pollution source areas using goegraphical information systems and water quality modeling. Wat. Res. Bull. 28 (5): 877–887.Google Scholar
  31. Tournoud, M. G., C. Rodier, C. Joseph, L. Casteill, S. Moine, M. Pacalin, 1997. Suivi des apports du bassin versant de l’étang de Thau et des échanges avec la mer par les canaux de Sète. Rapport final. Contrat pour l’étang de Thau. Université Montpellier I, II: 175 pp.Google Scholar
  32. Vaulot, D., G. F. Frisoni, 1986. Phytoplanctonic productivity and nutrients in five mediterranean lagoons. Oceanol. Acta 9 (1): 5763.Google Scholar
  33. Vollenweider, R. A., 1971, Les bases scientifiques de l’eutrophisation des lacs et des eaux courantes sous l’aspect particulier du phosphore et de l’azote comme facteurs d’eutrophisation, OCDE, Paris: 182 pp.Google Scholar
  34. Wischmeier. W.-H.. 1976. Use and misuse of the universal soil loss equation. J. Soil Wat. Conserv. 31 (1): 5–9.Google Scholar
  35. Wischmeier, W.-H., Smith, D.-D., 1978. Predicting Rainfall Erosion — A Guide to Conservation Planning. U.S. Department of Agriculture, Agriculture Handbook. (537): 57 pp.Google Scholar

Copyright information

© Springer Science+Business Media Dordrecht 2002

Authors and Affiliations

  • I. La Jeunesse
    • 1
  • J. M. Deslous-Paoli
    • 2
  • M. C. Ximénès
    • 3
  • J. P. Cheylan
    • 4
  • C. Mende
    • 5
  • C. Borrero
    • 5
  • L. Scheyer
    • 6
  1. 1.Direction Environnement et Aménagement du LittoralIfremerSète cedexFrance
  2. 2.Chemin de MaguelonneIfremerPalavas lesFlotsFrance
  3. 3.IfenOrléansFrance
  4. 4.CNRS, Cirad, Campus International de BaillarguetMontpellier Cedex 1France
  5. 5.Géodimensions, CEEI, CAP Alpha, av. de l’EuropeClapiersFrance
  6. 6.Centre de Recherche de MontpellierINRA-ENSAMMontpellierFrance

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