1,286
Views
20
CrossRef citations to date
0
Altmetric
Articles

Internal phosphorus loading contributions from deposited and resuspended sediment to the Lake of the Woods

References

  • [APHA] American Public Health Association. 2005. Standard methods for the examination of water and wastewater. 21st ed. Washington (DC).
  • Baken S, Moens C, van der Grift B, Smolders E. 2016a. Phosphate binding by natural iron-rich colloids in streams. Water Res. 98:326–333.
  • Baken S, Nawara S, Van Moorleghem C, Smolders E. 2014. Iron colloids reduce bioavailability of phosphorus in the green alga Raphidocelis subcapitata. Water Res. 59:198–206.
  • Baken S, Regenlink IC, Comans RNJ, Smolders E, Koopmans GF. 2016b. Iron-rich colloids as carriers of phosphorus in streams: a field-flow fractionation study. Water Res. 99:83–90.
  • Barko JW, Smart RM. 1986. Sediment-related mechanisms of growth limitation in submersed macrophytes. Ecology. 67:1328–1340.
  • Bolster CH, Hornberger GM. 2007. On the use of linearized Langmuir equations. Soil Sci Soc Am J. 71:1796–1806.
  • Bremner JM, Mulvaney CS. 1982. Nitrogen – total. Methods of soil analysis, part 2. Chemical and microbiological properties. Agronomy Monograph no 9, 2nd ed. Madison (WI): American Society of Agronomy, Soil Science Society of America.
  • Caraco NF, Cole JJ, Likens GE. 1989. Evidence for sulphate-controlled phosphorus release from sediments of aquatic systems. Nature. 341:316–318.
  • Carter LD, Dzialowski AR. 2012. Predicting sediment phosphorus release rates using landuse and water quality data. Freshwater Sci. 31:1214–1222.
  • Chen H, Burke JM, Mosindy T, Fedorak PM, Prepas EE. 2009. Cyanobacteria and microcystin-LR in a complex lake system representing a range in trophic status: Lake of the Woods, Ontario, Canada. J Plankton Res. 31:993–1008.
  • Cyr H, McCabe SK, Nürnberg GK. 2009. Phosphorus sorption experiments and the potential for internal phosphorus loading in littoral areas of a stratified lake. Water Res. 43:1654–1666.
  • de Vicente I, Cruz-Pizarro L, Rueda FJ. 2010. Sediment resuspension in two adjacent coastal lakes: controlling factors and consequences on phosphate dynamics. Aquat Sci. 72:21–31.
  • Doig LE, North RL, Hudson JJ, Hewlett C, Lindenschmidt KE, Liber K. 2017. Phosphorus release from sediments in a river-valley reservoir in the norther Great Plains of North America. Hydrobiologia. 787:323–339.
  • Effler SW, O'Donnell SM. 2010. A long-term record of epilimnetic phosphorus patterns in recovering Onondaga Lake, New York. Fund Appl Limnol. 177:1–18.
  • Effler SW, Prestigiacomo AR, Gelda R, Matthews DA. 2014. Partitioning the contributions of minerogenic particles and bioseston to particulate phosphorus and turbidity. Inland Waters. 4:179–192.
  • Filella M, Deville C, Chanudet V, Vignati D. 2006. Variability of the colloidal molybdate reactive phosphorus concentrations in freshwaters. Water Res. 40:3185–3192.
  • Froelich PN. 1988. Kinetic control of dissolved phosphate in natural rivers and estuaries: a primer on the phosphate buffer mechanism. Limnol Oceanogr. 33:649–668.
  • Gächter R, Meyer JS, Mares A. 1988. Contribution of bacteria to release and fixation of phosphorus in lake sediments. Limnol Oceanogr. 33:1542–1558.
  • Gächter R, Meyer JS. 1993. The role of microorganisms in mobilization and fixation of phosphorus in sediments. Hydrobiologia. 253:103–121.
  • Gelda RK, Effler SW, Prestigiacomo AR, Peng F, Auer MT, Kuczynski A, Chapra SC. 2016. Simulation of the contribution of phosphorus-containing minerogenic particles to particulate phosphorus concentration in Cayuga Lake, New York. Water Air Soil Pollut. 227:365.
  • Håkanson L, Jansson M. 2002. Principles of lake sedimentology. Caldwell (NJ): Blackburn Press.
  • Hargan KE, Paterson AM, Dillon PJ. 2011. A total phosphorus budget for the Lake of the Woods and Rainy River catchment. J Great Lakes Res. 37:753–763.
  • Haygarth PM, Warwick MS, House WA. 1997. Size distribution of colloidal molybdate reactive phosphorus in river waters and soil solution. Water Res. 31:439–448.
  • Holmroos H, Niemiströ J, Weckström K, Horppila J. 2009. Seasonal variation of resuspension-mediated aerobic release of phosphorus. Boreal Environ Res. 14:937–946.
  • Hondzo M, Feyaerts T, Donovan R, O'Connor BL. 2005. Universal scaling of dissolved oxygen distribution at the sediment-water interface: a power law. Limnol Oceanogr. 50:1667–1676.
  • Hupfer M, Gloess S, Grossart HP. 2007. Polyphosphate-accumulating microorganisms in aquatic sediments. Aquat Microb Ecol. 47:299–311.
  • Hupfer M, Glöss S, Schmieder P, Grossart HP. 2008. Methods for detection and quantification of polyphosphate and polyphosphate accumulating microorganisms in aquatic sediments. Int Rev Hydrobiol. 93:1–30.
  • James WF. 2010. Nitrogen retention in a floodplain backwater of the upper Mississippi River (USA). Aquat Sci. 72:61–69.
  • James WF, Barko JW. 1994. Macrophyte influences on sediment resuspension and export in a shallow impoundment. Lake Reserv Manage. 10:95–102.
  • James WF, Barko JW, Butler MG. 2004a. Shear stress and sediment resuspension in relation to submersed macrophyte growth. Hydrobiologia. 515:181–191.
  • James WF, Best EP, Barko JW. 2004b. Sediment resuspension and light attenuation in Peoria Lake: Can macrophytes improve water quality in this shallow system? Hydrobiologia. 515:193–201.
  • James WF, Larson CE. 2008. Phosphorus dynamics and loading in the turbid Minnesota River (USA): controls and recycling potential. Biogeochemistry. 90:75–92.
  • James WF, Sorge PW, Garrison PJ. 2015. Managing internal phosphorus loading and vertical entrainment in a weakly stratified eutrophic lake. Lake Reserv Manage. 31:292–305.
  • Jirka AM, Carter MJ, May D, Fuller FD. 1976. Ultramicro semiautomated method for simultaneous determination of total phosphorus and total Kjeldahl nitrogen in waste waters. Environ Sci Technol. 10:1038–1044.
  • Jones JR, Bachmann RW. 1976. Prediction of phosphorus and chlorophyll levels in lakes. J Water Pollut Cont Fed. 48:2176–2182.
  • Kelderman P, Ang'weya RO, De Rozari P. 2012. Sediment characteristics and wind-induced sediment dynamics in shallow Lake Markermeer, the Netherlands. Aquat Sci. 74:301–313.
  • Kleeberg A. 1998. The quantification of sulfate reduction in sulfate-rich freshwater lakes – a means for predicting the eutrophication process of acidic mining lakes? Water Air Soil Pollut. 108:365–374.
  • Loh PS, Molot LA, Nürnberg GK, Watson SB, Ginn B. 2013. Evaluating relationships between sediment chemistry and anoxic phosphorus and iron release across three different water bodies. Inland Waters. 3:105–118.
  • [LOW] Lake of the Woods, Water Sustainability Foundation. 2014. Overview. Rainy-Lake of the Woods state of the basin report; [cited 1 Jul 2014]. Available from: www.lowwsf.com/sobr-download.
  • Matisoff G, Carson M. 2014. Sediment resuspension in the Lake Erie nearshore. J Great Lakes Res. 40:532–540.
  • Matisoff G, Kaltenberg EM, Steely RL, Hummel SK, Seo J, Gibbons K, Bridgeman TB, Seo Y, Behbahana M, James WF, et al. 2016. Internal loading of phosphorus in western Lake Erie. J Great Lakes Res. 42:775–788.
  • Matisoff G, Watson SB, Guo J, Duewiger A, Steely R. 2017. Sediment and nutrient distribution and resuspension in Lake Winnipeg. Sci Tot Environ. 575:173–186.
  • Mortimer CH. 1971. Chemical exchanges between sediments and water in the Great Lakes – speculations on probable regulatory mechanisms. Limnol Oceanogr. 16:387–404.
  • Nakamura Y, Stefan HG. 1994. Effect of flow velocity on sediment oxygen demand: theory. J Env Eng. 120:996–1016.
  • Nürnberg GK. 1984. Iron and hydrogen sulfide interference in the analysis of soluble reactive phosphorus in anoxic waters. Water Res. 18:369–377.
  • Nürnberg GK. 1988. Prediction of phosphorus release rates from total and reductant-soluble phosphorus in anoxic lake sediments. Can J Fish Aquat Sci. 45:453–462.
  • Nürnberg GK. 1995. Quantifying anoxia in lakes. Limnol Oceanogr. 40:1100–1111
  • Nürnberg GK. 1996. Trophic state of clear and colored, soft- and hardwater lakes with special consideration of nutrients, anoxia, phytoplankton and fish. Lake Reserv Manage. 12:432–447.
  • Nürnberg GK. 1998. Prediction of annual and seasonal phosphorus concentrations in stratified and polymictic lakes. Limnol Oceanogr. 43:1544–1552.
  • Nürnberg GK. 2005. Quantification of internal phosphorus loading in polymictic lakes. Verh Int Ver Limnol 29:623–626.
  • Nürnberg GK. 2009. Assessing internal phosphorus load – problems to be solved. Lake Reserv Manage. 25:419–432.
  • Nürnberg GK, LaZerte BD. 2016. More than 20 years of estimated internal phosphorus loading in polymictic, eutrophic Lake Winnipeg, Manitoba. J Great Lakes Res. 42:18–27.
  • Nürnberg GK, LaZerte BD, Loh PS, Molot LA. 2013a. Quantification of internal phosphorus load in large, partially polymictic and mesotrophic Lake Simcoe, Ontario. J Great Lakes Res. 39:271–279.
  • Nürnberg GK, Molot LA, O'Connor E, Jarjanazi H, Winter JG, Young JD. 2013b. Evidence for internal phosphorus loading, hypoxia and effects on phytoplankton in partially polymictic Lake Simcoe, Ontario. J Great Lakes Res. 39:259–270.
  • Nürnberg GK, Tarvainen M, Ventelä A-M, Sarvala J. 2012. Internal phosphorus load estimation during biomanipulation in a large polymictic and mesotrophic lake. Inland Waters. 2:147–162.
  • Orihel DM, Schindler DW, Ballard NC, Graham MD, O'Connell DW, Wilson LR, Vinebrooke RD. 2015. The ‘nutrient pump:’ iron-poor sediments fuel low nitrogen-to-phosphorus ratios and cyanobacterial blooms in polymictic lakes. Limnol Oceanogr. 60:856–871.
  • Pla S, Paterson AM, Smol JP, Clark BJ, Ingram R. 2005. Spatial variability in water quality and surface sediment diatom assemblages in a complex lake basin: Lake of the Woods, Ontario, Canada. J Great Lakes Res. 31:253–266.
  • Plumb RH. 1981. Procedures for handling and chemical analysis of sediment and water samples. Vicksburg (MS): US Army Engineer Waterways Experiment Station, Technical Report EPA/CE-81-1.
  • Psenner R, Puckso R. 1988. Phosphorus fractionation: advantages and limits of the method for the study of sediment P origins and interactions. Arch Hydrobiol Biel Erg Limnol. 30:43–59.
  • Reitzel K, Ahlgren J, DeBrabandere H, Waldenbäck M, Gogoll A, Tranvik L, Rydin E. 2007. Degradation rates of organic phosphorus in lake sediment. Biogeochemistry. 82:15–28.
  • Roden EE, Edmonds JW. 1997. Phosphate mobilization in iron-rich anaerobic sediments: microbial Fe(III) oxide reduction versus iron sulfide formation. Arch Hydrobiol. 139:347–378.
  • Rühland K, Paterson AM, Smol JP. 2008. Hemispheric-scale patterns of climate-related shifts in planktonic diatoms from North American and European Lakes. Glob Change Biol. 14:2740–2754.
  • Rühland KM, Paterson AM, Hargan K, Jenkin A, Clark BJ, Smol JP. 2010. Reorganization of algal communities in the Lake of the Woods (Ontario, Canada) in response to turn-of-the-century damming and recent warming. Limnol Oceanogr. 55:2433–2451.
  • Søndergaard M, Jensen JP, Jeppesen E. 2001. Retention and internal loading of phosphorus in shallow, eutrophic lakes. Sci World. 1:427–442.
  • Søndergaard M, Jensen JP, Jeppsen E. 2003. Role of sediment and internal loading of phosphorus in shallow lakes. Hydrobiologia. 506–509:135–145.
  • Søndergaard M, Kristensen P, Jeppesen E. 1992. Phosphorus release from resuspended sediment in the shallow and wind-exposed Lake Arresø, Denmark. Hydrobiologia. 228:91–99.
  • [SERA-IEG] Southern Extension/Research Activity – Information Exchange Group 17. 2000. Methods of phosphorus analysis for soils, sediments, residuals, and waters. Southern Cooperative Series Bulletin No. 396. Available from: http://www.soil.ncsu.edu/sera17/publications/sera17-2/pn_cover.htm.
  • [SAS] Statistical Analysis System. 1994. SAS/STAT Users Guide. Version 6. 4th ed. Cary (NC): SAS institute.
  • Tsai CH, Lick W. 1986. A portable device for measuring sediment resuspension. J Great Lakes Res. 12:314–321.
  • Zhang W, Watson SB, Rao YR, Kling HJ. 2013. A linked hydrodynamic, water quality and algal biomass model for a large, multi-basin lake: A working management tool. Ecol Model. 269:37–50.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.