1,662
Views
14
CrossRef citations to date
0
Altmetric
Articles

Quantitative assessment of environmental risk from lead pollution of shooting range soils

ORCID Icon, , , &
Pages 76-85 | Received 18 Oct 2017, Accepted 12 Jul 2018, Published online: 14 Aug 2018

References

  • Hui CA. Lead distribution throughout soil, flora and an invertebrate at a wetland skeet range. J Toxicol Environ Health A. 2002;65:1093–107.
  • VanBon J, Boersema JJ. Sources, effects and management of metallic lead pollution: the contribution of hunting, shooting and angling. Contam Soil. 1988;3:269–271.
  • Astrup T, Boddum JK, Christensen TH. Lead distribution and mobility in a soil embankment used as a bullet stop at a shooting range. J Soil Contam. 1999;8:653–665.
  • Bruell R, Nikolaidis NP, Long RP. Evaluation of remedial alternatives of lead from shooting range soil, Environ. Eng Sci. 1999;16:403–414.
  • Camobreco VJ, Richards BK, Steenhuis TS, et al. Movement of heavy metals through undisturbed and homogenized soil columns. Soil Sci. 1996;161:740–750.
  • Cao X, Ma LQ, Hardison JD, et al. Weathering of lead bullets and their environmental effects at outdoor shooting ranges. J Environ Qual. 2003;32:526–534.
  • Zhang J, Yang B, Chen T, et al. Metal speciation and pollution assessment of Cd and Pb in intertidal sediments of Donghai Island, China. Reg Stud Mar Sci. 2016;6:37–48.
  • Ashraf MA, Maah MJ, Yusoff I. Speciation of heavy metals in the sediments of former tin mining catchment. Iran J Sci Technol. 2012;36:163–180.
  • Ashraf MA, Maah MJ, Yusoff I, et al. Speciation of heavy metals in the surface waters of a former tin miningcatchment. Chem Speciation Bioavailability. 2012;24:1–12.
  • Van Vleek B, Amarasiriwardena D, Xing B. Investigation of distribution of soil antimony using sequential extraction and antimony complexed to soil-derived humic acids molar mass fractions extracted from various depths in a shooting range soil. Microchem J. 2011;97:68–73.
  • Chrastny V, Komarek M, Hajek T. Lead contamination of an agricultural soil in the vicinity of a shooting range. Environ Monit Assess. 2010;162(1–4):37–46.
  • Ma LQ, Hardison D Jr., Harris WG, et al. Effects of soil property and soil amendment on weathering of abraded metallic Pb in shooting ranges. Water Air Soil Pollut. 2007;178:297–307.
  • Abdallah MAM. Chemical speciation and contamination assessment of Pb and V by sequential extraction in surface. Arab J Chem. 2017;10:68–75.
  • Rachou J, Sauve S. Evaluation of affinity constants of Cu, Cd, Ca and H for active soil surfaces for a solid phase controlled soil ligand model. Environ Chem. 2008;5:150–160.
  • Tessier A, Campbell PGC, Bisson M. Sequential extraction procedure for the speciation of particulate trace metals. Anal Chem. 1979;51:844–851.
  • Mossop KF, Davidson CM. Comparison of original and modified BCR sequential extraction procedures for the fractionation of copper, iron, lead manganese and zinc in soils and sediments. Anal Chimi Acta. 2003;478:111–118.
  • Fernandez-Ondono E, Bacchetta G, Lallena AM, et al. Use of BCR sequential extraction procedures for soils and plant metal transfer predictions in contaminated mine tailings in Sardinia. J Geochem Explor. 2017;172:133–141.
  • Fayiga AO, Saha UK. Effect of phosphate treatment on Pb leachability in contaminated shooting range soils. Soil Sediment Contam. 2017;26:115–126.
  • Sehube N, Kelebemang R, Totolo O, et al. Lead pollution of shooting range soils. S Afr J Chem. 2017;70:21–28.
  • Kelebemang R, Dinake P, Sehube N, et al. Speciation and mobility of lead in shooting range soils. Chem Speciat Bioavailab. 2017;29:143–152.
  • Sorvari J, Antikainen R, Pyy O. Environmental contamination at Finnish shooting ranges—the scope of the problem and management options. Sci Total Environ. 2006;366:21–31.
  • Perin G, Craboledda L, Lucchese M, et al. Heavy metal speciation in the sediments of Northern Adriatic Sea—a new approach for environmental toxicity determination. In: Lakkas TD, editor. Heavy Metal in the Environment 2. CEP Consultants, Edinburgh. 1985. p. 454–456.
  • Pejman A, Bidhendi GN, Ardestani M, et al. Fractionation of heavy metals in sediments and assessment of their availability risk: A case study in the northwestern of Persian Gulf. Mar Pollut Bull. 2017;114:881–887.
  • Ke X, Gui S, Huang H, et al. Ecological risk assessment and source identification for heavy metals in surface sediment from the Liaohe River protected area, China. Chemosphere. 2017;175:473–481.
  • Gu Z, Wu M, Li K, et al. Variation of heavy metal speciation during the pyrolysis of sediment collected from the Dianchi Lake, China. Arab J Chem. 2017;10:2196–2204.
  • Hakanson L. An ecological risk index for aquatic pollution control. A sedimentological approach. Water Res. 1980;14:975–1001.
  • Matong JM, Nyaba L, Nomngongo PN. Fractionation of trace elements in agricultural soils using ultrasound assisted sequential extraction prior to inductively coupled plasma mass spectrometric determination. Chemosphere. 2016;154:249–257.
  • Li Y, Zhang H, Tua C, et al. Occurrence of red clay horizon in soil profiles of the Yellow River Delta: implications for accumulation of heavy metals. J Geochem Explor. 2017;176:120–127.
  • Mmolawa KB, Likuku AS, Gaboutloeloe GK. Assessment of heavy metal pollution in soils along major roadside areas in Botswana. Afr J Environ Sci Technol. 2011;5:186–196.
  • Adejoh IP. Assessment of heavy metal contamination of soil and cassava plants within the vicinity of a cement factory in north central, Nigeria. Adv Appl Sci Res. 2016;7:20–27.
  • Li L, Xu ZR, Zhang C, et al. Quantitative evaluation of heavy metals in solid residues from sub- and super-critical water gasification of sewage sludge. Bioresour Technol. 2012;121:169–175.
  • Islam MN, Nguyen XP, Jung HY, et al. Chemical speciation and quantitative evaluation of heavy metal pollution hazards in two army shooting range backstop soils. Bull Environ Contam Toxicol. 2016;96:179–185.
  • Islam MN, Jung HY, Park JH. Subcritical water treatment of explosive and heavy metals co-contaminated soil: removal of the explosive, immobilization and risk assessment of heavy metals. J Environ Manag. 2015;163:262–269.
  • Islam MN, Park JH. Immobilization and reduction of bioavailability of lead in shooting range soil through hydrothermal treatment. J Environ Manag. 2017;191:172–178.
  • Shen F, Liao R, Ali A, et al. Spatial distribution and risk assessment of heavy metals in soil near a Pb/Zn smelter in Feng County, China. Ecotoxicol Environ Saf. 2017;139:254–262.
  • Tandy S, Meier N, Schulin R. Use of soil amendments to immobilize antimony and lead in moderately contaminated shooting range soils. J Hazard Mater. 2017;324:617–625.
  • Beiyuan J, Awad YM, Beckers F, et al. Mobility and phytoavailability of As and Pb in a contaminated soil using pine sawdust biochar under systematic change of redox conditions. Chemosphere. 2017;178:110–118.
  • Urrutia-Goyes R, Argyraki A, Ornelas-Soto N. Assessing lead, nickel, and zinc pollution in topsoil from a historic shooting range rehabilitated into a public urban park. Int J Environ Res Public Health. 2017;14:698–712.
  • Basunia S, Landsberger S. Contents and leachability of heavy metals (Pb, Cu, Sb, Zn,As) in soil at the pantex firing range, Amarillo, Texas. J Air Waste Manag Assoc. 2001;51:1428–1435.
  • Cheng SF, Huang CY, Lin MS. Sodium acetate method for determining CEC of cadmium-contaminated soil. Sustain Environ Res. 2012;22:85–89.
  • Cao X, Ma LQ, Chen M, et al. Weathering of lead bullets and their environmental effects at outdoor shooting ranges. J Environ Qual. 2003;32:526–534.