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Geochemical impact of aquifer storage and recovery operation on fate and transport of sediment phosphorus in a large shallow lake

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Abstract

In response to the impact of climate change, the US Army Corps of Engineers proposed a large-scale implementation plan for an aquifer storage and recovery (ASR) project in the Kissimmee River Basin, Florida, in 2009. It is envisaged that the routine operation of the ASR will deliver recovered water from ASR wells into Lake Okeechobee with inherently different water quality parameters. However, the addition of ASR well water into such a large, shallow lake has raised concerns about sediment phosphorus stability, which could lead to increased eutrophication in Lake Okeechobee. This paper presents a geochemical assessment to explore possible impacts of the addition of ASR well water on lake sediment in terms of phosphorus adsorption, desorption, and diffusion processes via laboratory-scale batch and column tests. Based on five different mixing ratios of ASR well water and lake water, estimated isotherms, and piston velocity calculations, a mechanistic modeling analysis provided a better understanding of the fate of sediment phosphorus and its transport processes. A final multicriteria decision analysis suggests that the mixing ratio of 1:10 between ASR well water and lake water is deemed more applicable than others based on the given composition of ASR well water, which might buffer more external phosphorus loading in the long run.

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References

  • BBL (2003) The evaluation of alternatives for the Lake Okeechobee sediment management feasibility study, South Florida Water Management District Report, C11650, West Palm Beach, FL, USA

  • Beck MB (1981) Hard or soft environmental systems. Ecol Model 11(4):233–251

    Article  Google Scholar 

  • Chang NB, Liu S, Daranpob A (2009) CERP ASR alkalinity, metal, mineral impacts on phosphorus fate and transport in Lake Okeechobee, Interim Report of SFWMD, West Palm Beach, FL, USA

  • Durham B, Rinck-Pfeiffer S, Guendert D (2003) Integrated water resource management—through reuse and aquifer recharge. Desalination 152(1–3):6–7

    Google Scholar 

  • Evans RD (1994) Empirical evidence of the importance of sediment resuspension in lakes. Hydrobiologia 284:5–12

    Article  Google Scholar 

  • Fisher MM, Reddy KR, James RT (2001) Long-term changes in the sediment chemistry of a large shallow subtropical lake. Lake Reserv Manag 17:217–232

    Article  Google Scholar 

  • Fisher MM, Reddy KR, James RT (2005) Internal nutrient loads from sediments in a shallow, subtropical lake. Lake Reserv Manag 21:338–349

    Article  Google Scholar 

  • Havens KE, James RT (2005) The phosphorus mass balance of lake Okeechobee, Florida: implications for eutrophication management. Lake Reserv Manag 21(2):139–148

    Article  Google Scholar 

  • Havens KE, Aumen NG, James RT, Smith VH (1996) Rapid ecological changes in a large subtropical lake undergoing cultural eutrophication. Ambio 25:150–155

    Google Scholar 

  • Hiscock JG, Thourot CS, Zhang J (2003) Phosphorus budget and land use relationships for the northern Lake Okeechobee watershed, Florida. Ecol Eng 21:63–74

    Article  Google Scholar 

  • Imboden DM (1974) Phosphorus model of lake eutrophication. Limnol Oceanogr 19(2):297–304

    Article  Google Scholar 

  • Kelly MH, Gore IA (2008) Florida river flow patterns and the Atlantic multidecadal oscillation. River Res Appl 24:598–616

    Article  Google Scholar 

  • Lung WS (1975) Modeling of phosphorus sediment-water interactions in White Lake, Michigan. Ph.D. dissertation, The University of Michigan, Ann Arbor, MI, USA

  • Maliva RG, Horvath LE, Pearce MS (2004) Aquifer storage and recovery (ASR) issues and concepts. Position paper prepared for the St. Johns River Water Management District, ASR Systems LLC, FL, USA

  • Olila OG, Reddy KR (1993) Phosphorus sorption characteristics of sediments in shallow eutrophic lakes of Florida. Arch Hydrobiol 129:45–65

    Google Scholar 

  • Paerl HW (1988) Nuisance phytoplankton blooms in coastal, estuarine, and inland waters. Limnol Oceanogr 33:823–847

    Article  Google Scholar 

  • Paerl HW, Fulton RS III, Moisander PH, Dyble J (2001) Harmful freshwater algal blooms with an emphasis on cyanobacteria. Sci World 1:76–113

    Google Scholar 

  • Pollman CD (1983) Internal loading in shallow lakes. Ph.D. dissertation, University of Florida, Gainesville, FL, USA

  • Pollman, CD, James, T (2011) A simple model of internal loading of phosphorus in lake okeechobee 27(1):15–27

  • Pyne RGD (2005) Aquifer storage recovery: a guide to groundwater recharge through wells, 2nd edn. ASR Press, Gainesville, p 608

    Google Scholar 

  • Reddy KR (1991) Lake Okeechobee phosphorus dynamics study, vol. II: physico-chemical properties in the sediments. Prepared for South Florida Water Management District, West Palm Beach, FL, USA

  • Rydin E, Welch EB (1998) Aluminum dose required to inactivate phosphate in lake sediments. Wat Res 32:2969–2976

    Article  Google Scholar 

  • Smits JGC, van der Molen DT (1993) Application of SWITCH, a model for sediment-water exchange of nutrients, to Lake Veluwe in the Netherlands. Hydrobiologia 253(2):281–300

    Article  Google Scholar 

  • South Florida Water Management District and the United States Army Corps Engineers (SFWMD and USACE) (2008) Aquifer storage and recovery program, Interim Report, West Palm Beach, FL, USA

  • Tian J, Zhou P (2008) Phosphorus fractions and adsorption characteristics of floodplain sediments in the lower reaches of the Hanjiang River, China. Environ Monit Assess 137:233–241

    Article  Google Scholar 

  • U.S. Army Corps of Engineers. (2004) Aquifer storage and recovery pilot project design report, vol. 1. Comprehensive everglades restoration plan—final report, Jacksonville, FL, USA

  • Vollenweider RA (1975) Input-output models with special reference to the phosphorus loading concept in Limnology. Schweiz Z Hydrol 37:53–84

    Google Scholar 

  • Wang H, Appan A, Gulliver JS (2003) Modeling of phosphorus dynamics in aquatic sediments: I-model development. Wat Res 37:3928–3938

    Article  Google Scholar 

  • Welch EB, Cooke GD (1995) Internal loading in shallow lakes: importance and control. Lake Reserv Manag 11:273–281

    Article  Google Scholar 

  • Wool TA, Ambrose RB, Martin JL, Comer EA (2001) Water quality analysis simulation program (WASP) version 6: user’s manual. U.S. Environmental Protection Agency, Atlanta

    Google Scholar 

Download references

Acknowledgments

The authors acknowledge partial financial support from the US Army Corps of Engineers (USACE) and South Florida Water Management District (SFWMD) and are grateful for all data and reports cited and used in this study. They are also thankful for constructive comments from all reviewers.

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Correspondence to Ni-Bin Chang.

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Liu, S., Chang, NB. Geochemical impact of aquifer storage and recovery operation on fate and transport of sediment phosphorus in a large shallow lake. Environ Earth Sci 68, 189–201 (2013). https://doi.org/10.1007/s12665-012-1729-5

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  • DOI: https://doi.org/10.1007/s12665-012-1729-5

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