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Seasonal patterns in the soil water balance of a Spartina marsh site at North Inlet, South Carolina, USA

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Abstract

Time series of ground-water head at a mid-marsh site near North Inlet, South Carolina, USA can be classified into five types of forcing signatures based on the dominant water flux governing water-level dynamics during a given time interval. The fluxes that can be recognized are recharge by tides and rain, evapotranspiration (ET), seepage into the near surface soil from below, and seepage across the soil surface to balance either ET losses or seepage influxes from below. Minimal estimates for each flux can be made by multiplying the head change induced by it by the measured specific yield of the soil. These flux estimates are provide minimal values because ET fluxes resulting from this method are about half as large as those estimated from calculated potential evapotranspiration (PET), which place an upper limit on the actual ET. As evapotranspiration is not moisture-limited at this regularly submerged site, the actual ET is probably nearly equal to PET. Thus, all of the other fluxes are probably twice as large as those given by this method. Application of this method shows that recharge by tides and rain only occurs during spring and summer when ET exceeds upward seepage from below and is thereby able to draw down the water table below the marsh surface occasionally. During fall and winter, seepage of fresh water from below is largely balanced by seepage out of the soil into overlying tidal water or into sheet flow during tidal exposure. The resulting reduction in soil water salinity may thereby enhance the growth of Spartina in the following spring.

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Literature cited

  • Dingman, S. L.. 1994. Physical Hydrology. Prentice-Hall, Engle-wood Cliffs, NJ, USA.

    Google Scholar 

  • Fetter, C. W. 1994. Applied Hydrogeology. Third edition. Macmillan College Publishing Company. New York, NY, USA.

    Google Scholar 

  • Gardner, L. R. and M. Bohn. 1980. Geomorphic and hydraulic evolution of tidal creeks on a subsiding beach ridge plain, S.C. Marine Geology 34:91–97.

    Article  Google Scholar 

  • Gardner, L. R. and D. E. Porter. 2001. Stratigraphy and geologic history of a southeastern salt marsh basin, North Inlet, South Carolina, USA. Wetlands Ecology and Management 9:371–385.

    Article  Google Scholar 

  • Gardner, L. R., B. R. Smith, and W. K. Michener. 1992. Soil evolution along a forest-salt marsh transect under a regime of slowly rising sea level, southeastern United States. Geoderma 55:141–157.

    Article  Google Scholar 

  • Gardner, L. R., H. W. Reeves, and P. M. Thibodeau. 2002. Ground-water dynamics along forest-marsh transects in a southeastern salt marsh, USA: Description, interpretation and challenges for numerical modeling. Wetlands Ecology and Management 10:143–157.

    Article  Google Scholar 

  • Green, W. H. and G. A. Ampt. 1911. Studies on soil physics, 1: The flow of air and water through soils. Journal of Agricultural Science 4:1–24.

    Article  Google Scholar 

  • Keenan, R. S. 1994. An investigation of the dynamics of ground-water flow and salinity distribution along a forest-salt marsh transect. M.S. Thesis. Department of Geological Sciences, University of South Carolina, Columbia, SC, USA.

    Google Scholar 

  • Keenan, R., J. Dickerson, L. R. Gardner, and H. Reeves. 1996. Inexpensive electronic water level recorders for hydrologic studies. Ground Water Monitoring and Remediation Spring: 77–83.

  • Kjerfve, B. 1986. Circulation and salt flux in a well mixed estuary. p. 22–29. In J. van de Kreeke (ed.) Physics of Shallow Estuaries and Bays. Springer-Verlag. New York, NY, USA.

    Google Scholar 

  • McCraith, B. 1998. The distribution and dynamics of fiddler crab burrowing and its effects on salt marsh sediment composition and chemistry in a southeastern salt marsh. Ph.D. Dissertation. Marine Science Program, University of South Carolina. Columbia, SC, USA.

    Google Scholar 

  • Nuttle, W. K. and W. H. Harvey. 1995. Fluxes of water and solute in a coastal wetland sediment I. The contribution of regional groundwater discharge. Journal of Hydrology 164:89–107.

    Article  Google Scholar 

  • Priestly, C. H. B. and R. J. Taylor. 1972. On the assessment of surface heat flux and evaporation using large-scale parameters. Monthly Weather Review 100:81–92.

    Article  Google Scholar 

  • Salisbury F. B. and C. Ross. 1969. Plant Physiology. Wadsworth Publishers, Belmont, CA, USA.

    Google Scholar 

  • Thibodeau, P. M. 1997. Groundwater flow dynamics across the forest-salt marsh interface: North Inlet, South Carolina. Ph.D. Dissertation. Department of Geological Sciences, University of South Carolina, Columbia, SC, USA.

    Google Scholar 

  • Thibodeau, P. M., L. R. Gardner, and H. W. Reeves. 1998. The role of groundwater flow in controlling the spatial distribution of soil salinity and rooted macrophytes in a southeastern salt marsh, USA. Mangroves and Salt Marshes 2:1–13.

    Article  Google Scholar 

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Correspondence to Leonard R. Gardner.

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Gardner, L.R., Reeves, H.W. Seasonal patterns in the soil water balance of a Spartina marsh site at North Inlet, South Carolina, USA. Wetlands 22, 467–477 (2002). https://doi.org/10.1672/0277-5212(2002)022[0467:SPITSW]2.0.CO;2

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  • DOI: https://doi.org/10.1672/0277-5212(2002)022[0467:SPITSW]2.0.CO;2

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