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Porewater acid/base chemistry in near-shore regions of an acidic lake

The influence of groundwater inputs

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Abstract

Sediment porewaters in the near-shore region (within 1 m of the shoreline) of an acidic lake (Dart's Lake) were monitored during the summer of 1983 to investigate whether spatial variations in porewater acid/base chemistry were significant in this region of the lake. Previous investigations of Dart's Lake porewaters have indicated that within deeper waters (>2m depth), sediment porewaters are elevated in alkalinity relative to overlying lake water. Within the near-shore region, porewaters both considerably more and less acidic than the lake water were observed. Both reduction of strong acid anions (SO4 2−, NO3 ) and the mobilization of base cations were significant mechanisms of alkalinity production in porewaters exhibiting reducing conditions. In sediments reflecting oxic conditions, porewaters were generally more acidic than the lakewater. Measurement of groundwater seepage into the lake at the near-shore sites indicated that oxic sites exhibited elevated inputs of groundwater when compared to sites where reducing conditions existed. The acidic porewaters associated with high groundwater flows suggests that groundwater inputs to the lake may be a source of acidity (not alkalinity) on a whole-lake basis.

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References

  • Alexander M (1963) Introduction to Soil Microbiology. John Wiley, New York

    Google Scholar 

  • Anderson MP & Bowser CJ (1986) The role of groundwater in delaying lake acidification. Water Resources Research 22: 1101–1108

    Google Scholar 

  • Baker JP (1984) Fishes. In: The Acidic Deposition Phenomenon and its Effects: Critical Assessment Review Papers, Vol II. EPA-600/8-83-016B

  • Baker LA, Brezonik PL & Edgerton ES (1986) Sources and sinks of ions in a soft water acidic lake in Florida. Water Resources Research 22: 715–722

    Google Scholar 

  • Baker LA & Brezonik PL (1988) Dynamic model of in-lake alkalinity generation. Water Resources Research 24: 65–74

    Google Scholar 

  • Belanger TV & Mikutel DF (1985) On the use of seepage meters to estimate groundwater nutrient loading to lakes. Water Resources Bulletin 21: 265–272

    Google Scholar 

  • Brock TD, Lee DR, Janes D & Winke D (1982) Groundwater seepage as a nutrient source to a drainage lake: Lake Mendota, Wisconsin. Water Research 16: 1255–1263

    Google Scholar 

  • Carignan R (1985) Quantitative importance of alkalinity flux from the sediments of acid lakes. Nature 317: 158–160

    Google Scholar 

  • Chen CW, Gherini SA, Peters NE, Murdoch PS, Newton RM & Goldstein RA (1984) Hydrologic analyses of acidic and alkaline lakes. Water Resources Research 20: 1875–1882

    Google Scholar 

  • Cole DW & Johnson DW (1977) Atmospheric sulfate additions and cation leaching in a Douglas fir ecosystem. Water Resources Research 13: 313–317

    Google Scholar 

  • Cook RB, Kelly CA, Schindler DW & Turner MA (1986) Mechanisms of hydrogen ion neutralization in an experimentally acidified lake. Limnology and Oceanography 31: 134–148

    Google Scholar 

  • Driscoll CT (1984) A procedure for the fractionation of aqueous aluminum in dilute acidic waters. International Journal of Environmental and Analytical Chemistry 16: 267–283

    Google Scholar 

  • Driscoll CT & Newton RM (1985) Chemical characteristics of Adirondack lakes. Environmental Science and Technology 19: 1018–1024

    Google Scholar 

  • Driscoll CT & Schafran GC (1984) Characterization of short-term changes in the base neutralizing capacity of an acidic Adirondack, NY lake. Nature 310: 308–310

    Google Scholar 

  • Driscoll CT, Yatsko CP & Unangst FJ (1987) Longitudinal and temporal trends in the water chemistry of the North Branch of the Moose River. Biogeochemistry 3; 37–61

    Google Scholar 

  • Eshleman KN & Hemond HF (1988) Alkalinity and major ion budgets for a Massachusetts reservoir and watershed. Limnology and Oceanography 33: 174–185

    Google Scholar 

  • Foster NW, Nicolson JA & Hazlett PW (1989) Temporal variation in nitrate and nutrient cations in drainage waters from a deciduous forest. J. Environmental Quality 18: 238–244

    Google Scholar 

  • Fuller RD, David MB & Driscoll CT (1985) Sulfate adsorption relationships in some forested Spodosols of the northeastern U.S. Soil Science Society of America Journal 49: 1034–1040

    Google Scholar 

  • Henriksen A, Skogheim OK & Rosseland BO (1984) Episodic changes in pH and aluminum-speciation kill fish in a Norwegian salmon river, Vatten 40: 225–260

    Google Scholar 

  • Hultberg H & Johansson S (1981) Acid groundwater. Nordic Hydrology 12: 51–64

    Google Scholar 

  • Kelly CA, Rudd JWM, Furutani A & Schindler DW (1984) Effects of lake acidification on rates of organic matter decomposition in sediments, Limnology and Oceanography 29: 687–694

    Google Scholar 

  • Kelly CA & Rudd JWM (1984) Epilimnetic sulfate reduction and its relationship to lake acidification. Biogeochemistry 1: 63–77

    Google Scholar 

  • Kelly CA, Rudd JWM, Cook RB & Schindler DW (1982) The potential importance of bacterial processes in regulating rate of lake acidification. Limnology and Oceanography 27 (5): 868–882

    Google Scholar 

  • Kenoyer GJ & Anderson MP (1989) Groundwater's dynamic role in regulating acidity and chemistry in a precipitation-dominated lake. Journal of Hydrology 109: 287–306

    Google Scholar 

  • LaZerte BD & Dillon PJ (1984) Relative importance of anthropogenic versus natural sources of acidity in lakes and streams of central Ontario. Canadian Journal Fisheries and Aquatic Science 41: 1664–1677

    Google Scholar 

  • Lee DR (1977) A device for measuring seepage flux in lakes and estuaries. Limnology and Oceanography 22 (1): 140–147

    Google Scholar 

  • Lee DR & Cherry JA (1978) A field exercise on groundwater flow using seepage meters and mini-piezometers. J. Geologic Education 27: 6–10

    Google Scholar 

  • Likens GE, Borman FH, Pierce RS, Eaton JS & Johnson NM (1977) Biogeochemistry of a Forested Ecosystem. Springer-Verlag, New York Inc

  • Lin JC & Schnoor JL (1986) Acid precipitation model for seepage lakes. Journal of Environmental Engineering 112: 677–694

    Google Scholar 

  • McBride MS & Pfannkuch HO (1975) The distribution of seepage within lakebeds. J. Research U.S. Geological Survey 3: 505–512

    Google Scholar 

  • Menzel DW & Vaccaro RF (1964) The measurement of dissolved organic and particulate carbon in seawater. Limnology and Oceanography 9: 138–142

    Google Scholar 

  • Newton RM, Weintraub J & April R (1987) The relationship between surface water chemistry and geology in the North Branch of the Moose River. Biogeochemistry 3: 21–35

    Google Scholar 

  • Rudd JWM Kelly CA, St. Louis V, Hesslein RH, Furutani A & Holoka MH (1986a) Microbial consumption of nitric and sulfuric acids in acidified north temperate lakes. Limnology and Oceanography 31: 1267–1280

    Google Scholar 

  • Rudd JWM, Kelly CA & Furutani A (1986b) The role of sulfate reduction in long-term accumulation of organic and inorganic sulfur in lake sediments. Limnology and Oceanography 31: 1281–1291

    Google Scholar 

  • Schafran GC (1988) The influence of groundwater inputs on the porewater and sediment chemistry of a dilute, acidic lake. Ph.D Thesis, Syracuse University, Syracuse, NY

  • Schafran GC & Driscoll CT (1987a) Comparison of terrestrial and hypolimnetic sediment generation of acid neutralizing capacity for an acidic Adirondack lake. Environmental Science and Technology 21: 998–993

    Google Scholar 

  • Schafran GC & Driscoll CT (1987b) Spatial and temporal variations in aluminum chemistry of a dilute, acidic lake. Biogeochemistry 3: 105–119

    Google Scholar 

  • Schecher WD & Driscoll CT (1987) An evaluation of uncertainty associated with aluminum equilibrium calculations. Water Resources Research 23: 525–534

    Google Scholar 

  • Schiff SL & Anderson RF (1986) Alkalinity production in epilimnetic sediments: acidic and non-acidic lakes. Water, Air, and Soil Pollution 31: 941–948

    Google Scholar 

  • Schindler DW, Turner MA, Stainton MP & Linsey GA (1986) Natural sources of acid neutralizing capacity in low alkalinity lakes of the precambrian shield. Science 232: 844–847

    Google Scholar 

  • Stainton MP (1973) A syringe gas-stripping procedure for gas chromatographic determination of dissolved inorganic and organic carbon in fresh water and carbonates in sediments. Journal of the Fisheries Research Board of Canada 30: 1441–1445

    Google Scholar 

  • Staubitz WW & Zariello PJ (1989) Hydrology of two headwater lakes in the Adirondack Mountains of New York. Canadian Journal of Fisheries and Aquatic Science 46: 268–276

    Google Scholar 

  • Sullivan TJ, Driscoll CT, Gherini SA, Munson RK, Cook RB, Charles DF & Yatsko CP (1989) Influence of aqueous aluminum and organic acids on measurement of acid neutralizing capacity in surface waters. Nature 338: 408–410

    Google Scholar 

  • Sweerts JP, Rudd JWM & Kelly CA (1986) Metabolic activities in flocculent surface sediments and underlying sandy littoral sediments. Limnology and Oceanography 31: 330–338

    Google Scholar 

  • Yuretich R, Leonard W & Pohanka S (1989) Hydrogeologic factors affecting acid neutralization in Cadwell Creek Watershed, west central Massachusetts. Water Resources Research 25: 644–654

    Google Scholar 

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Schafran, G.C., Driscoll, C.T. Porewater acid/base chemistry in near-shore regions of an acidic lake. Biogeochemistry 11, 131–150 (1990). https://doi.org/10.1007/BF00002063

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