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Is salinity the only water quality parameter affected when saline water is disposed in rivers?

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International Journal of Salt Lake Research

Abstract

The effect of saline lake water disposal from the Lough Calvert Drainage Scheme on water quality of the Barwon River, in south west Victoria, Australia, was investigated. The Scheme is used to regulate the levels of several saline lakes outside the Barwon's catchment. This study found that the disposal of saline lake water was associated with increased total phosphorus, PO4, TKN, suspended solids, electrical conductivity and stream discharge and lower NOx in the Barwon River. Thus, when disposing of saline water, factors other than salinity should be considered in order to prevent an impact on the aquatic environment. At present this is generally not done. The results are discussed with reference to the effects of saline water disposal on aquatic biota and how the effect of saline lake water disposal on water quality may differ from the disposal of saline groundwater.

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References

  • Crowther, R.A. and Hynes, H.B.N. 1977. The effect of road deicing salt on the drift of stream benthos. Environmental Pollution 14: 113–126.

    Article  CAS  Google Scholar 

  • Daldorph, P.W.G. and Thomas, J.D. 1991. The effect of nutrient enrichment on a freshwater community dominated by macrophytes and molluscs and its relevance to snail control. Journal of Applied Ecology 28: 685–702.

    Article  Google Scholar 

  • DWR 1989. Water Victoria a resource handbook. Department of Water Resources Victoria, Australia.

    Google Scholar 

  • Evans, R.S. 1989. Saline water disposal options in the Murray Basin. BMR Journal of Australian Geology and Geophysics 11: 167–185.

    Google Scholar 

  • Faithchild, G.W., Campbell, J.M. and Lowe, R.L. 1989. Numerical response of chydorids (Cladocera) and chironomids (Diptera) to nutrient-enhanced perophyton growth. Archives Hydrobiologia. 114: 369–382.

    Google Scholar 

  • GHD 1992. An investigation of nutrients pollution in the Murray-Darling River system. Gutteridge Haskins & Davey Pty Ltd, Ref No: 311/1048/0504, Report prepared for the Murray-Darling Basin Commission, Australia.

  • Gippel, C.J. 1989. The use of turbidimeters in suspended sediment research. Hydrobiologia 176/177: 465–480.

    Article  Google Scholar 

  • Gippel, C.J. 1994. Monitoring turbidity of stream water. Australian Journal of Soil and Water Conservation 7: 37–44.

    Google Scholar 

  • Gippel, C.J. 1995. Potential of turbidity monitoring for measuring the transport of suspended solids in streams. Hydrological Processes 9: 83–97.

    Google Scholar 

  • Grattan, S.R. and Maas, E.V. 1984. Interactive effects of salinity and substrate phosphate on soybean. Agronomy Journal 76: 668–676.

    Article  CAS  Google Scholar 

  • Growns, J.E., Davis, J.A., Cheal, F., Schmidt, LG., Rosich, R.S. and Bradley, S.J. 1992. Multivariate pattern analysis of wetland invertebrate communities and environmental variables in Western Australia. Australian Journal of Ecology 17: 275–288.

    Google Scholar 

  • Hall, G.C. and Gorgens, A.H.M. 1978. Studies of mineralisation in South African rivers. South African National Scientific Program Report No. 26, South Africa.

  • Harrison, J. 1994. Review of nutrients in irrigation drainage in the Murray-Darling Basin. Water Resources Series: No 11, Division of Water Resources, CSIRO, Australia.

    Google Scholar 

  • Hart, B., Bailey, P., Edwards, P., Hortle, K. and James, K. 1990. Effects of salinity on rivers, streams and wetland ecosystems in Victoria, Australia. Water Research 24: 1103–1117.

    Article  CAS  Google Scholar 

  • Hart B., Bailey, P., Edwards, P., Hortle, K., James, K., McMahon, A., Meredith, C. and Swadling, K. 1991. A review of the salt sensitivity of the Australian freshwater biota. Hydrobiologia 210: 105–144.

    Google Scholar 

  • Heathwaite, A.L., Johnes, P.J. and Peters, N.E. 1996. Trends in nutrients. Hydrological Processes 10: 263–293.

    Article  Google Scholar 

  • Heatwole, H. and Lowman, M. 1986. Dieback, Death of a Australian landscape. Read Books Pty Ltd: Frenches Forest, NSW, Australia.

    Google Scholar 

  • James, K.R. and Hart, B.T. 1993. Effect of salinity on four freshwater macrophytes. Australian Journal of Marine and Freshwater Research 44: 769–777.

    Article  CAS  Google Scholar 

  • Jenkins, M.K. 1995. Options for the disposal of saline groundwater to the Goulburn River. Flora and Fauna Technical Report No. 138. Department of Conservation and Natural Resources, Victoria, Australia.

    Google Scholar 

  • Jeppesen, E., Sondergaard, M., Kanstrup, E., Petersen, B., Eriksen, R.B., Hammershfj, M., Mortensen, E., Jensen, J.P. and Have, A. 1994. Does the impact of nutrients on the biology structure and function of brackish and freshwater lakes differ? Hydrobiologia 275/276: 15–30.

    Article  CAS  Google Scholar 

  • Kefford, B.J. 1997. The effect of saline water disposal on the aquatic environment using macroinvertebrates as indicators: final report. Marine and Freshwater Resources Institute, Department of Natural Resources and Environment, Victoria, Australia.

    Google Scholar 

  • Kefford, B.J., in press. The relationship between electrical conductivity and selected macroinvertebrate communities in four river systems of south-west Victoria, Australia. International Journal of Salt Lake Research.

  • Kefford, B.J. and Robley A. 1996. The effect of saline water disposal from the Lough Calvert Drainage Scheme on macroinvertebrates and water quality around the confluence of the Barwon River and Birregurra Creek. Arthur Rylah Institute, Department of Natural Resources and Environment, Victoria, Australia.

    Google Scholar 

  • Lawson, D.R. 1990. Barwon river salt generation processes. Investigations Branch Report Number 1990/50. Rural Water Commission of Victoria, Australia.

    Google Scholar 

  • Läuchli, A. 1986. Responses and adaptations of crops to salinity. Acta Horticulturae 190: 243–246.

    Google Scholar 

  • Maas, E.V. 1993. Salinity and citriculture. Tree Physiology 12: 195–216.

    PubMed  CAS  Google Scholar 

  • OEC 1988. State of the environment report: Victorian Inland Waters. Office of the Commissioner for the Environment: Melbourne, Victoria, Australia.

    Google Scholar 

  • Papadopoulos, I., Rendig, V.V. and Broadbent, F.E. 1985. Growth, nutrition, and water uptake of tomato plants with divided roots growing in differentially salinized soil. Agronomy Journal 77: 21–26.

    Article  CAS  Google Scholar 

  • Parliament of Victoria 1984. Salt of the earth: the causes, effects and control of land and river salinity in Victoria. Salinity Committee, Third Report to Parliament, Victoria, Australia.

  • Peak, A.J. 1978. Salinization of non-irrigated soils and associated streams: A review. Australian Journal of Soil Research 16: 157–168.

    Article  Google Scholar 

  • Pettigrove, V. 1988. The importance of site selection in monitoring macroinvertebrate communities of the Yarra River, Victoria. Environmental Monitoring and Assessment 14: 297–313.

    Article  Google Scholar 

  • Pillsbury, A.F. 1981. The salinity of rivers. Scientific America 245: 32–43.

    Article  Google Scholar 

  • Robley, A. and Kefford, B.J. 1996. A preliminary study of the impact of theBirregurra Creek on macroinvertebrates of the Barwon River; with reference to saline disposal. Technical Report, Kaiela Research Station, Department of Conservation and Natural Resources, Victoria, Australia.

    Google Scholar 

  • Ryan, T. and Davies, P. 1996. Environmental effects of salinity and nutrients from salt disposal: approaches to the development of management criteria. Flora and Fauna Technical Report No. 137, Department of Conservation and Natural Resources, Victoria, Australia.

    Google Scholar 

  • Short, T.M., Black, J.A. and Birge, W.J. 1991. Ecology of a saline stream: community response to spatial gradients of environmental conditions. Hydrobiologia 226: 167–178.

    Google Scholar 

  • Stewart-Oaten, A. 1995. Rules and judgements in statistics: three examples. Ecology 76: 2001–2009.

    Article  Google Scholar 

  • Stewart-Oaten, A., Murdoch, W.W. and Parker, K.R. 1986. Environmental impact assessment: “pseudoreplication” in time? Ecology 67: 929–940.

    Article  Google Scholar 

  • VWQMN 1995. Victorian Water Quality Monitoring Network Database, Thiess Environmental Services and Water Ecoscience, Victorian, Australia.

  • Warwick, N.W.N. and Bailey, P.C.E. 1997. The effect of increasing salinity on the growth and ion content of three non-halophytic wetland macrophytes. Aquatic Botany 58: 73–88.

    Article  CAS  Google Scholar 

  • Williams, W.D. 1987. Salinization of rivers and streams: an important environmental hazard. AMBIOS 16: 180–185.

    Google Scholar 

  • Zar, J.H. 1984. Biostatistical Analysis, second edition. Prentice-Hall, Inc, New Jersey.

    Google Scholar 

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Kefford, B.J. Is salinity the only water quality parameter affected when saline water is disposed in rivers?. International Journal of Salt Lake Research 7, 285–300 (1998). https://doi.org/10.1007/BF02442141

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