Successful application of Managed Aquifer Recharge in the improvement of the water resources management of semi-arid regions: Examples from Arizona and the Southwestern U.S.A.

Authors

  • M. R. Lluria Hydrosystems, Inc.

DOI:

https://doi.org/10.21701/bolgeomin.120.2.001

Keywords:

Arizona, artificial recharge, Central Arizona Project, MAR, Salt River project

Abstract


Artificial recharge of groundwater is a technique nowadays fully integrated in the water resources planning in the State of Arizona. First experiences were carried out by the University of Arizona, and their main target was the study of water quality changes after passing through the soil to be purified. Afterwards, a very wet period suffered in Arizona made all stakeholders became aware of the necessity of storing surface water surpluses by means of artificially recharging drafted aquifers. 1980 and 1986 laws established the legal framework for all MAR aspects, including the ownership of the recharged water. So, the most important artificial recharge projects in Arizona were developed, i.e. Salt River Project, Granite Reef Underground Storage Project, Central Arizona Project, among others. They have contributed to a very important development of this technique and have provided excellent results. In this paper, the main characteristics of some of these large projects are shown.

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References

Gastelum,J., Lluria,M.R. and Small,G.G., 2009. Vadose zone recharge wells: Ten years at the City of Scottsdale's Water Campus Facility: Arizona Hydrological Society Proceedings of the 2009 Annual Meeting, Phoenix.

Lluria, M.R., 1985., City of Phoenix Cave Creek Recharge Project: Technical Aspects. In: Marsh, F., ed., Second Symposium on Artificial Recharge of Groundwater, University of Arizona, pp. 82-111.

Lluria, M.R., Gorey, T.L. and Mack, R.B., 1991. Hydro-geochemistry and chemical compositional changes of groundwater from a deep well recharge operation using river water subjected to limited on-site treatment. Proceedings of the Fifth Biennial Symposium on Artificial Recharge of Groundwater: University of Arizona, pp. 155-168.

Lluria, M.R. 1995a., Site selection for aquifer storage projects in the Lower Agua Fria Basin. Proceeding of the Seventh Biennial Symposium on Artificial Groundwater Recharge, pp. 47-57.

Lluria, M.R. and Fisk, M., 1995b. A large aquifer facility for the Phoenix area. In: Artificial Recharge of GroundWater, II: American Society of Civil Engineers, pp. 129-138.

Lluria, M.R., 1998. Successful operation of a large aquifer storage facility for a desert community. In: Artificial Recharge of Groundwater; A.A. Balkema, Rotterdam, pp. 41-45. https://doi.org/10.1201/9781003078500-7

Lluria, M.R., 1999. Hydro-geochemitry and quality changes to the groundwater of the receiving aquifer of a large water-spreading facility. In: Proceedings of the Ninth Biennial Symposium on Artificial Recharge of Groundwater: Arizona Hydrological Society, pp. 225-236.

Lluria, M.R. 2002., Geophysics for site selection, monitoring and operation of ground-water recharge projects. In: Dillon, P. ed., Management of Aquifer Recharge for Sustainability: A.A. Balkema Publishers, pp. 547-552. https://doi.org/10.1201/9781003078838-115

Lluria, M.R., 2008.Water spreading in the desert: Southwest Hydrology volume 7 number 3. pp. 28-29.

Macia, N.F. and Lluria, M.R., 2001. Development of an extensive well recharge and recovery system for a large utility. In: Proceedings of the Tenth Biennial Symposium on Artificial Recharge of Groundwater: Arizona Hydrological Society, pp. 81-88.

Paski, M.P. and Lluria, M.R. 2005. Hydrogeologic and geologic considerations for site selection of a large water spreading facility in the West Salt River Valley. In: Proceedings of the Twelfth Biennial Symposium on Groundwater Recharge, pp. 81-91.

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Published

2009-06-30

How to Cite

Lluria, M. R. (2009). Successful application of Managed Aquifer Recharge in the improvement of the water resources management of semi-arid regions: Examples from Arizona and the Southwestern U.S.A. Boletín Geológico Y Minero, 120(2), 111–120. https://doi.org/10.21701/bolgeomin.120.2.001

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Articles