3,732
Views
39
CrossRef citations to date
0
Altmetric
Articles

Speciation and mobility of lead in shooting range soils

, ORCID Icon, , , &
Pages 143-152 | Received 23 Mar 2017, Accepted 26 Jun 2017, Published online: 31 Aug 2017

References

  • Li Y, Zhu Y, Zhao S, Liu X. The weathering and transformation process of lead in China’s shooting ranges. Environ Sci: Processes Impacts. 2015;17:1620–1633.10.1039/C5EM00022J
  • Scheuhammer AM. Historical perspective on the hazards of environmental lead from ammunition and fishing weights in Canada. In: Watson RT, Fuller M, Pokras M, Hunt WG, editors. Ingestion of leadfrom spent ammunition: implications for wildlife and humans. Boise, Idaho, USA: The PeregrineFund. DOI: 10.4080/iIsa2009.0105;2009. p. 61–67.
  • Mao JS, Cao J, Graedel TE. Losses to the environment from the multilevel cycle of anthropogenic lead. Environ Pollut. 2009;157:2670–2677.10.1016/j.envpol.2009.05.003
  • Rattner BA, Franson JC, Sheffield SR. Sources and implications of lead ammunition and fishing tackle on natural resources. Wildlife society technical review. Rev Lit Arts Am. 2008;6:1–62.
  • US Environmental Protection Agency (USEPA). Region II, Best management practices for lead at outdoor shooting ranges. New York, RCRA Compliance Branch, 290 Broadway, 22nd Fl.;2005. ( EPA-902-B-01-001).
  • Apostoli P, Cornelis R, Duffus J, et al. World Health Organisation (WHO). Elemental speciation in human health risk assessment. Geneva: Environmental Health Criteria 234; 2006. p. 1–256.
  • Camobreco VJ, Richards BK, Steenhuis TS, et al. Movement of heavy metals through undisturbed and homogenized soil columns. Soil Sci. 1996;161:740–750.10.1097/00010694-199611000-00003
  • Bruell R, Nikolaidis NP, Long RP. Evaluation of remedial alternatives of lead from shooting range soil. Environ Eng Sci. 1999;16:403–414.10.1089/ees.1999.16.403
  • Violante A, Cozzolino V, Perelomov L, et al. Mobility and bioavailability of heavy metals and metalloids in soil environments. J Soil Sci Plant Nutr. 2010;10:268–292.
  • Krishnamurti GSR, Naidu R. Speciation and phytoavailability of cadmium in selected surface soils of South Australia. Aust J Soil Res. 2000;38:991–1004.10.1071/SR99129
  • Mana SC, Fatt NT, Ashraf MA. The fate and transport of arsenic species in the aquatic ecosystem: a case study on Bestari Jaya, Peninsular Malaysia. Environ Sci Pollut Res. 2016;23:1–9.
  • Tessier A, Campbell PGC, Bisson M. Sequential extraction procedure for the speciation of particulate trace metals. Anal Chem. 1979;51:844–851.10.1021/ac50043a017
  • 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 mining catchment. Chem Speciation Bioavailability. 2012;24:1–12.10.3184/095422912X13259575370081
  • 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;97:68–73.10.1016/j.microc.2010.05.015
  • 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):37–46.10.1007/s10661-009-0774-3
  • 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;178:297–307.10.1007/s11270-006-9198-7
  • Vodyanitskii YN. Methods of sequential extraction of heavy metals from soils: new approaches and the mineralogical control (a review). Eurasian Soil Sci. 2006;39:1074–1083.10.1134/S106422930610005X
  • Ma LQ, Rao GN. Chemical fractionation of cadmium, copper, nickel, and zinc in contaminated soils. J Environ Qual. 1997;26:259–264.10.2134/jeq1997.00472425002600010036x
  • 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;5:150–160.10.1071/EN07093
  • Chopin EIB, Black S, Hodson ME, et al. A preliminary investigation into mining and smelting impacts on trace element concentrations in the soil and vegetation around Tharsis, SW Spain. Mineral Mag. 2003;67:279–288.10.1180/0026461036720099
  • Maramba NP, Reyes JP, Francisco-Rivera AT, et al. Environmental and human exposure assessment monitoring of communities near an abandoned mercury mine in the Philippines: a toxic legacy. J Environ Manage. 2006;81:135–145.10.1016/j.jenvman.2006.02.013
  • Cao X, Ma LQ, Chen M, et al. Weathering of lead bullets and their environmental effects at outdoor shooting ranges. J Environ Qual. 2003;32:526–534.10.2134/jeq2003.5260
  • Nachtergaele F, De Wit P. Soil map of the Republic of Botswana. Soil mapping and advisory services project; Gaborone;1990. ( FAO/BOT/85/011).
  • Cheng SF, Huang CY, Lin MS. Sodium acetate method for determining CEC of cadmium-contaminated soil. Sustain Environ Res. 2012;22:85–89.
  • Nelson DW, Sommers LE. Total carbon, organic carbon, and organic matter. In: Page AL, Miller RH, Keeney DR. editors. Methods of soil analysis, part 2 chemical and microbiological properties 9. Madison (WI): ASA; 1982. p. 539–577.
  • Peddicord R. Synopsis of applications and limitations of TCLP and SPLP at outdoor shooting ranges. Newtown (CT): Facility development series No. 4, National shooting sports foundation; 1998. p. 1–12.
  • Reid S, Cohen SZ. A new tool to predict lead mobility in shooting range soils: predicting SPLP results. The 16th Annual International Conference on Contaminated Soils, Sediments and Water; Amherst: University of Massachusetts; 2000.
  • US Environmental Protection Agency (USEPA). Test methods for evaluation of solid waste. vol. IA, laboratory manual physical/chemical methods, SW 846, 40 CFR parts 403 and 503. 3rd ed. Washington (DC): US Government Printing Office; 1995.
  • Kabala C, Singh BR. Fractionation and mobility of copper, lead, and zinc in soil profiles in the vicinity of a copper smelter. J Environ Qual. 2001;30:485–492.10.2134/jeq2001.302485x
  • Mellor A, McCartney C. The effects of lead shot deposition on soils and crops at a clay pigeon shooting site in northern England. Soil Use Manage. 1994;10:124–129.10.1111/sum.1994.10.issue-3
  • Bricka M. Soil treatments to limit lead mobility’. Fourth National Shooting Range Symposium; Policy Track: Environmental Issues; Vicksburg, Mississippi; 2000. p. 123–125.
  • Abadin H, Ashizawa A, Stevens YW. Toxicological profile for lead. Atlanta (GA): US Public Health Service and Agency Toxic Substance and Disease; 2007. p. 582.
  • Sporting Arms and Ammunition Manufacturers’ Institute, SAAMI. Lead mobility at shooting ranges. EA Engineering, Science, and Technology, Inc. 11019 McCormick Road, Hunt Valley (MD) 21031; Project No. 13081.01, Flintlock Ridge Office Center, 11 Mile Hill Road, Newtown, CT 06470; 1996. p. 22.
  • Lin Z. Secondary mineral phases of metallic lead in soils of shooting ranges from Orebro county. Sweden. Environ Geol. 1996;27:370–375.10.1007/BF00766707
  • Jorgensen SS, Willems M. The fate of lead in soils: the transformation of lead pellets in shooting range soils. Ambio. 1987;6:11–15.
  • Ashraf MA, Ahmad M, Akib S, et al. Chemical species of metallic elements in the aquatic environment of an ex-mining catchment. Water Environ Res. 2014;86:717–728.10.2175/106143014X13975035525825
  • McBride MB. Environmental chemistry of soils. Oxford: Oxford University Press; 1994.
  • Kotoky P, Bora BJ, Baruah NK, et al. Chemical fractionation of heavy metals in soils around oil installations, Assam. Chem Spec Bioavailab. 2003;15:115–126.10.3184/095422903782775181
  • Aikpokpodion PE, Lajide L, Aiyesanmi AF. Assessment of heavy metals mobility in selected contaminated cocoa soils in Ondo state, Nigeria. Global J Environ Res. 2012;6:30–35.
  • Ismail THT, Adnan NAF, Samah MAA. The accumulation of Fe, Pb, Zn, Ni and Cd in Nerita lineata and Thais bitubercularis obtained from Tanjung Harapan and Teluk Kemang, Malaysia. J Clean WAS. 2017;1:6–16.
  • Halim NIA, Phang IC. Salicylic acid mitigates Pb stress in Nicotiana Tabacum. G War Sains. 2017;1:16–19.
  • Sanderson P, Naidu R, Bolan N. The effect of environmental conditions and soil physicochemistry on phosphate stabilisation of Pb in shooting range soils. J Environ Manage. 2016;170:123–130.10.1016/j.jenvman.2016.01.017
  • Ahmad M, Lee SS, Lim JE, et al. Speciation and phytoavailability of lead and antimony in a small arms range soil amended with mussel shell, cow bone and biochar: EXAFS spectroscopy and chemical extractions. Chemosphere. 2014;95:433–441.10.1016/j.chemosphere.2013.09.077
  • Moon DH, Park J, Chang Y, et al. Immobilization of lead in contaminated firing range soil using biochar. Environ Sci Pollut Res. 2013;20:8464–8471.10.1007/s11356-013-1964-7
  • Ashraf MA, Maah MJ, Yusoff I. Removal of lead from synthetic solutions by protonated teleosts biomass. E-J Chem. 2012;9:345–353.10.1155/2012/769180