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Tritium in groundwater in the Black Hills of South Dakota

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Abstract

Tritium from 1950s and 1960s atmospheric hydrogen-bomb tests was dispersed into the stratosphere and around the globe. The fallout of tritium in precipitation was especially high in the northern hemisphere, peaking during a flurry of atmospheric nuclear testing in 1963. Rainout from hydrogen-bomb tests recharged aquifers, and this maximum of tritiated water inadvertently has provided hydrogeologists with a way to establish the time of recharge because prior to hydrogen-bomb explosions, practically no tritium existed in groundwater. In 1967, the US Geological Survey took numerous Inyan Kara Group groundwater samples in the Dewey/Burdock area of the southwestern Black Hills. They found tritium concentrations exceeding 200 tritium units and determined a groundwater velocity of 4.6 m per day in the Inyan Kara aquifer, assuming the tritium originated from rainout on nearby outcrops in 1963. In 2011, the US Geological Survey took groundwater samples in the same general area as the 1967 study. These samples from the Inyan Kara Group had tritium concentrations ranging from ≤ 0 to 15.3 tritium units, much lower than the 1967 study and almost back to values expected from natural production of tritium. Because the half-life of tritium is ~ 12.3 years, only 7% of the tritium generated from tests in 1963 would still be present 48 years later in 2011. The maximum tritium values found in the 2011 study are approximately the values expected from radioactive decay only; this could be interpreted that in some locations very slow groundwater movement has occurred between 1967 and 2011, while in other locations lower tritium values show there has been much faster movement. However, the great range of tritium concentrations indicates considerable variability in groundwater dispersion has occurred. This variability is caused by the complex stratigraphic units of irregular geometry and permeability in the Inyan Kara Group.

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References

  • Back W, Hanshaw BB, Plummer LN, Rahn PH, Rightmire CT, Rubin M (1983) Process and rate of dedolomitization: mass transfer and 14C dating in a regional carbonate aquifer. Geol Soc Am Bull 94:1415

    Article  Google Scholar 

  • Boggs JM (1983) Hydrogeologic investigations at proposed uranium mine near Dewey, South Dakota. Tennessee Valley Authority Report WR-28-2-520-128, p 54

  • Boggs JM, Jenkins AM (1980) Analysis of aquifer tests conducted at the proposed Burdock uranium mine site—Burdock, South Dakota. Tennessee Valley Authority Report WR28-1-520-109, p 73

  • Bredehoeft JD, Neuzil CE, Milly PCD (1983) Regional flow in the Dakota aquifer: a study of the role of confining layers. US Geol Survey Water-Supply Paper 2237, p 45

  • Canadian Nuclear Safety Commission (2009) Investigation of the environmental fate of tritium in the atmosphere. http://nuclearsafety.gc.ca/pubs_catalogue/uploads/Investigation_of_Environmental_Fate_of_Tritium_in_the_Atmosphere_INFO-0792_e.pdf. Accessed 1 Oct 2017

  • Carter JM, Driscoll DG, Williamson JE, Lindquist VA (2002) Atlas of water resources in the Black Hills area, South Dakota. US Geol Survey Hydrol Inv Atlas HA-747, p 120

  • Case HL (1984) Hydrology of the Inyan Kara and Dakota-Newcastle aquifer system, South Dakota. In: Jorgenson DC, Signor DC (eds) Proc of the geohydrology of the Dakota aquifer symposium. Nat Water Well Assoc, pp 147–165

  • Clark ID, Fritz P (1997) Environmental isotopes in hydrogeology. Lewis Publishers, New York, p 328

    Google Scholar 

  • Dahlstrom DJ, Fox JE (1995) Fluvial architecture of the Lower Cretaceous Lakota Formation, southwestern flank of the Black Hills uplift, South Dakota. US Geol Survey Bull 1917-S, p 20

  • Danielsen EF (1968) Stratospheric-tropospheric exchange based upon radioactivity, ozone, and potential vorticity. J Atmos Sci 25:502–518

    Article  Google Scholar 

  • Darton NH (1909) Geology and underground water of South Dakota. US Geol Survey Water-Supply Paper 227, p 156

  • Davis AD (1986) Deterministic modeling of dispersion in heterogeneous permeable media. Ground Water 24(5):609–615

    Article  Google Scholar 

  • Dettinger M, Ralph FM, Lavers D (2016) Setting the stage for a global science of atmospheric rivers. EOS Earth Space Sci News 97(1):7

    Google Scholar 

  • Domenico PA, Schwartz FW (1990) Physical and chemical hydrogeology. Wiley, New York, p 824

    Google Scholar 

  • Doney SC, Glover DM, Jenkins WJ (1992) A model function of the global bomb tritium distribution in precipitation, 1960–1986. J Geophys Res 97(C4):5481–5492

    Article  Google Scholar 

  • Eastoe CJ, Watts CJ, Ploughe M, Wright WE (2012) Future use of tritium in mapping pre-bomb groundwater volumes. Ground Water 50(1):87–93

    Article  Google Scholar 

  • Eriksson E (1965) An account of the major pulses of tritium and their effect in the atmosphere. Tellus 17:118–130

    Google Scholar 

  • Fetter CW (1999) Contaminant hydrogeology, 2nd edn. Waveland Press, Long Grove, p 500

    Google Scholar 

  • Freeze RA, Cherry JA (1979) Groundwater. Prentice-Hall, Englewood Cliffs, p 604

    Google Scholar 

  • Gat JR, Mook WG, Meijer HAJ (2001) Tritium in the atmosphere. Internat Atomic Energy Agency: Environmental Isotopes in the Hydrological Cycle, Principles and Application, 2, Atmospheric Water, pp 209–232

  • Gott GB, Wolcott DE, Bowles CG (1974) Stratigraphy of the Inyan Kara Group and localization of uranium deposits, southern Black Hills, South Dakota and Wyoming. US Geol Survey Prof Paper 763, p 57

  • International Atomic Energy Agency (IAEA) (1969) Environmental isotope data 1: world survey of isotope concentration in precipitation (1953–1963). Tech Rept Ser, IAEA, p 96

  • Johnson RH (2012a) Update on USGS research at the proposed Dewey Burdock uranium in situ recovery mine, Edgemont, South Dakota. Presentation to EPA Region 8 in Denver, CO. http://crustal.usgs.gov/projects/UREP/2-Groundwater-geochemistry-Dewey-Burdock-Johnson-final.pdf. Accessed 22 Feb 2012

  • Johnson RH (2012b) Geochemical data from groundwater at the proposed Dewey Burdock uranium in situ recovery mine, Edgemont, South Dakota. US Geol Survey Open-File Report 2012-1070, p 11

  • Keene JR (1973) Ground-water resources of the western half of Fall River County, South Dakota. South Dakota Geol Survey Rept of Inv 109, p 82

  • Lucas LL, Unterweger MP (2000) Comprehensive review and critical evaluation of the half-life of tritium. J Res Natl Inst Stand Technol 105(4):541. https://doi.org/10.6028/jres.105.043

    Article  Google Scholar 

  • Mason AS, Hut G, Telegades K (1982) HTO and 95Zr residence times. Tellus 34:369–375

    Article  Google Scholar 

  • Michel RL (1989) Tritium deposition over the continental United States, 1953–1983. In: Proceedings of Baltimore symposium, May, 1989, international association of hydrological sciences, international union of geodesy and geophysics. http://www.iugg.org

  • Morishima H, Kawai H, Koya T, Niwa T (1985) The trends of global tritium precipitations. J Radiat Res 26:283–312

    Article  Google Scholar 

  • Naus CA, Driscoll DG, Carter JM (2001) Geochemistry of the Madison and Minnelusa aquifers in the Black Hills area, South Dakota. US Geol Survey Water-Resources Inv Rept 01-4129, p 118

  • Palmen EH, Newton CW (1969) Atmospheric circulation systems: their structure and physical interpretation. Academic Press, New York, p 603

    Google Scholar 

  • Rahn PH (1992) Aquifer hydraulics in a deep confined Cretaceous aquifer at Wall, South Dakota. In: Proceedings of assoc engineering geologists, 35th annual meeting, Los Angeles, CA, pp 409–418

  • Rahn PH (2014) Permeability of the Inyan Kara Group in the Black Hills area and its relevance to a proposed in situ leach uranium mine. Proc South Dakota Acad Sci 93:15–32

    Google Scholar 

  • Reed RJ (1955) A study of a characteristic type of upper-level frontogenesis. J Meteorol 12:226–237

    Article  Google Scholar 

  • Rhodes R (1996) Dark sun, the making of the hydrogen bomb. Simon and Schuster, New York, p 731

    Google Scholar 

  • Schoon RA (1971) Geology and hydrology of the Dakota Formation in South Dakota. South Dakota Geol Survey Rept of Inv 104, p 41

  • Stewart GL, Farnsworth RK (1968) United States tritium rainout and its hydrologic implications. Water Resour Res 4:273–289

    Article  Google Scholar 

  • Stewart GL, Hoffman CM (1966) Tritium rainout over the United States. US Geol Surv Circ 520:11

    Google Scholar 

  • Strobel ML, Galloway JM, Hamade GR, Jarrell GJ (2000) Potentiometric surface of the Inyan Kara aquifer in the Black Hills area, South Dakota. U.S. Geological Survey Hydrol Inv Atlas HA-745-A, 2 pl

  • Thatcher LL (1962) The distribution of tritium fallout in precipitation over North America. Int Assoc Sci Hydrol Bull 7(2):48–58. https://doi.org/10.1080/02626666209493255

    Article  Google Scholar 

  • US Geological Survey (1950) Burdock, South Dakota, topographic quadrangle; 1:24,000 scale

  • US Geological Survey (1951) Dewey, Wyo—S Dakota, topographic quadrangle; 1:24,000 scale

  • US Nuclear Regulatory Commission (2012) Environmental impact statement for the Dewey–Burdock project in Custer and Fall River counties, South Dakota: Supplement to the generic environmental impact statement for in situ leach uranium milling facilities. NUREG-1910, Supplement 4(1)

  • Warneck P (1988) Chemistry of the natural atmosphere. Academic Press, New York, p 757

    Google Scholar 

  • Williamson JE, Carter JM (2001) Water-quality characteristics in the Black Hills area, South Dakota. US Geol Survey Water-Resources Inv Rept 01-4194, p 196

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Rahn, P.H., Detwiler, A.G. & Davis, A.D. Tritium in groundwater in the Black Hills of South Dakota. Environ Earth Sci 76, 762 (2017). https://doi.org/10.1007/s12665-017-7082-y

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