[1]
WHO 2013; http: /www. who. int/mediacentre/factsheets/fs379/en.
Google Scholar
[2]
Occupational Knowledge International; Environmental Impacts of Mining and Smelting, (Available at http: /www. okinternational. org/mining).
Google Scholar
[3]
Dudka, S. and D.C. Adriano. Environmental Impacts of Metal Ore Mining and Processing: A review., Journal of Environmental Quality, Vol. 26, No. 3 (1997): 590-602.
DOI: 10.2134/jeq1997.00472425002600030003x
Google Scholar
[4]
Tong, S., Schirnding, Y. E., & Prapamontol, T. (2000). Environmental lead exposure: A public health prob- lem of global dimensions. Bulletin of the World Health Organization, 78, 1068–1077.
Google Scholar
[5]
Davis, B. E. (1987). Concentrations of environmental con- tamination by lead mining in Wales. Hydrobiologia, 149, 213–220.
Google Scholar
[6]
Holmgren, G. G. S., Meyer, M. W., Chaney, R. L., & Daniels, R. B. (1993). Cadmium, lead, zinc, copper, and nickel in agricultural soils of the United States of America. Journal of Environmental Quality, 22, 335– 348.
DOI: 10.2134/jeq1993.00472425002200020015x
Google Scholar
[7]
Besser, J. M., Brumbaugh, W. G., May, T. W., & Schmitt, C. J. (2007). Biomonitoring of lead, zinc, and cadmium in streams draining lead-mine and non-mining areas, southeast Missouri, USA. Environmental Monitoring and Assessment, 129, 227–241.
DOI: 10.1007/s10661-006-9356-9
Google Scholar
[8]
Zhang X, Yang L, Li Y, Li H, Wang W, Ye B. (2012). Impacts of lead/zinc mining and smelting on the environment and human health in China. Environ Monit Assess. 184(4): 2261-73.
DOI: 10.1007/s10661-011-2115-6
Google Scholar
[9]
Zhang, J. F., Mauzerall, D. L., Zhu, T., Liang, S., Ezzati, M., and Remais, J. V. (2010). Environmental health in China: Progress toward clean air and safe water. Lancet 375, 1110–1119.
DOI: 10.1016/s0140-6736(10)60062-1
Google Scholar
[10]
Lead smelting; http: /www. worstpolluted. org/projects_reports/display/86.
Google Scholar
[11]
Primary Metals: Lead Processing., Illinois Sustainable Technology Center, Prairie Research Institute. Accessed on August 31, 2011. (Available at: http: /www. istc. illinois. edu/info/librarydocs/manuals/primmetals/chapter6. htm).
Google Scholar
[12]
ILA, Battery production and recycling, Recycling in the Informal Sector. www. ila-lead. org.
Google Scholar
[13]
U.S. Geological Survey, Mineral Commodity Summaries, January (2013).
Google Scholar
[14]
David E. Guberman, Lead, U.S. Geological Survey Minerals Yearbook—(2011).
Google Scholar
[15]
International Lead and Zinc Study Group, 2012a, ILZSG spring 2012 meetings—Forecasts: Lisbon, Portugal, International Lead and Zinc Study Group. press release, april 26, 4 p.
Google Scholar
[16]
International Lead and Zinc Study Group, 2012, Lead and zinc statistics— Monthly bulletin of the International Lead and Zinc Study Group: Lisbon, Portugal, International Lead and Zinc Study Group, v. 52, no. 7, July, 77 p.
DOI: 10.1163/1570-6664_iyb_sim_org_38807
Google Scholar
[17]
International Lead and Zinc Study Group, (2012), New mine and smelter projects: Lisbon, Portugal, International Lead and Zinc Study Group, January 18, 69 p.
Google Scholar
[18]
Recylex S.A., 2012, annual report (2011): Paris, France, Recylex S.A., 136 p. (Available at; http: /www. recylex. fr/en, actionnaires-investisseurs, rapport-annuels. html. ).
Google Scholar
[19]
Toxicological Profile for Lead; U.S. Department of Health and Human Services. Public Health Service, Agency for Toxic Substances and Disease Registry, (2007).
DOI: 10.15620/cdc:95222
Google Scholar
[18]
Eisinger J (1982). Lead and wine: Eberhard Gockel and the colica Pictonum. Medical History, 26: 279–302.
DOI: 10.1017/s0025727300041508
Google Scholar
[19]
Franklin B (1786). Letter on lead poisoning to Benjamin Vaughan, 31 July 1786 (Available at; http: /www. ledizolv. com/LearnAbout/LeadHazards/benfranklin. ).
Google Scholar
[20]
Shu, W. S., Ye, Z. H., Zhang, Z. Q., Lan, C. Y., and Wong, M. H. (2005). Natural colo- nization of plants on five lead/zinc mine tailings in Southern China. Restoration Ecology 13, 49–60.
DOI: 10.1111/j.1526-100x.2005.00007.x
Google Scholar
[21]
Bao, Q. S., Lu, C. Y., Song, H., Wang, M., Ling, W. H., Chen, W. Q., Deng, X. Q., Hao, Y. T., and Rao, S. Q. (2009).
Google Scholar
[22]
Bi, X. Y., Feng, X. B., Yang, Y. G., Qiu, G. L., Li, G. H., Li, F. L., Liu, T. Z., Fu, Z. Y., and Jin, Z. S. (2006).
Google Scholar
[23]
Chan, G. Y.S., Ye, Z. H., and Wong, M. H. (2003). Comparison of four Sesbania species to remediate Pb/Zn and Cu mine tailings. Environmental Management 32, 246–251.
DOI: 10.1007/s00267-003-2901-1
Google Scholar
[24]
Duzgoren-Aydin, N. S. (2007). Sources and characteristics of lead pollution in the ur- ban environment of Guangzhou. Science of the Total Environment 385, 182–195.
DOI: 10.1016/j.scitotenv.2007.06.047
Google Scholar
[25]
Fu, J. J., Zhou, Q. F., Liu, J. M., Liu, W., Wang, T., Zhang, Q. H., and Jiang, G. B. (2008).
Google Scholar
[26]
Liu, Y. G., Zhang, H. Z., Zeng, G. M., Huang, B. R., and Li, X. (2006). Heavy metal accumulation in plants on Mn mine tailings. Pedosphere 16, 131–136.
DOI: 10.1016/s1002-0160(06)60035-0
Google Scholar
[27]
Liu, X. H., Gao, Y. T., Khan, S., Duan, G., Chen, A. K., Ling, L., Zhao, L., Liu, Z. G., and Wu, X. C. (2008).
Google Scholar
[28]
Shu, W. S., Xia, H. P., Zhang, Z. Q., Lan, C. Y., and Wong, M. H. (2002). Use of Vetiver and three other grasses for revegetation of Pb/Zn mine tailings. Field experiment. International Journal of Phytoremediation 4, 47–57.
DOI: 10.1080/15226510208500072
Google Scholar
[29]
Shu, W. S., Ye, Z. H., Zhang, Z. Q., Lan, C. Y., and Wong, M. H. (2005). Natural colonization of plants on five lead/zinc mine tailings in Southern China. Restoration Ecology 13, 49–60.
DOI: 10.1111/j.1526-100x.2005.00007.x
Google Scholar
[30]
Tian, D. L., Xiang, W. H., Yan, W. D., Kang, W. X., Deng, X. W., and Fan, Z. (2007). Biological cycles of mineral elements in a young mixed stand in abandoned mining soils. Journal of Integrative Plant Biology 49, 1284–1293.
DOI: 10.1111/j.1744-7909.2007.00535.x
Google Scholar
[31]
Tian, D. L., Zhu, F., Yan, W. D., Fang, X., Xiang, W. H., Deng, X. W., Wang, G. J., and Peng, C. H. (2009).
Google Scholar
[32]
Wang, J., Zhang, C. B., and Jin, Z. X. (2009). The distribution and phytoavailability of heavy metal fractions in rhizosphere soils of Paulowniu fortunei (seem) Hems near a Pb/Zn smelter in Guangdong, PR China. Geoderma 148, 299– 306.
DOI: 10.1016/j.geoderma.2008.10.015
Google Scholar
[33]
Williams, P. N., Lei, M., Sun, G. X., Huang, Q., Lu, Y., Deacon, C., Meharg, A. A., and Zhu, Y. G. (2009).
Google Scholar
[34]
Yan, S., Ling, Q. C., and Bao, Z. Y. (2007). Metals contamination in soils and veg- etables in metal smelter contaminated sites in Huangshi, China. Bulletin of Environmental Contamination and Toxicology 79, 361–366.
DOI: 10.1007/s00128-007-9219-2
Google Scholar
[35]
Yang, Q. W., Shu, W. S., Qiu, J. W., Wang, H. B., and Lan, C. Y. (2004). Lead in paddy soils and rice plants Lechang and its potential health risk around lead/zinc Mine, Guangdong, China. Environment International 30, 883–889.
DOI: 10.1016/j.envint.2004.02.002
Google Scholar
[36]
Ye, Z. H., Wong, J. W. C., Wong, M. H., Baker, A. J. M., Shu, W. S., and Lan, C. Y. (2000). Revegetation of Pb/Zn mine tailings, Guangdong Province, China. Restoration Ecology 8, 87–92.
DOI: 10.1046/j.1526-100x.2000.80012.x
Google Scholar
[37]
Ye, Z. H., Wong, J. W. C., and Wong, M. H. (2000). Vegetation response to lime and manure compost amendments on acid lead/zinc mine tailings: A greenhouse study. Restoration Ecology 8, 289–295.
DOI: 10.1046/j.1526-100x.2000.80041.x
Google Scholar
[38]
Ye, Z. H., Shu, W. S., Zhang, Z. Q., Lan, C. Y., and Wong, M. H. (2002). Evaluation of major constraints to revegetation of lead/zinc mine tailings using bioassay techniques. Chemosphere 47, 1103–1111.
DOI: 10.1016/s0045-6535(02)00054-1
Google Scholar
[39]
Zhang, C. B., Wu, L. H., Luo, Y. M., Zhang, H. B., and Christie, P. (2008).
Google Scholar
[40]
Zhuang, P., McBride, M. B., Xia, H. P., Li, N. Y., and Lia, Z. A. (2009). Health risk from heavy metals via consumption of food crops in the vicinity of Dabaoshan mine, South China. Science of the Total Environment 407, 1551–1561.
DOI: 10.1016/j.scitotenv.2008.10.061
Google Scholar
[41]
Wu, P., Liu, C. Q., Yang, Y. G., & Zhang, G. P. (2001). Re- lease and transport of (heavy) metals and their envi- ronmental effect in mining activities. Acta Minerlogica Sinica, 21, 213–218.
Google Scholar
[42]
Ye, L., Li, C. Y., Liu, T. G., & Pan, Z. P. (2006). The status-quo of research on supergenic geochemistry of cadmium in Pb–Zn deposits. Earth and Environment, 34, 55–60.
Google Scholar
[43]
Kovacs, E., Dubbin, W. E., & Tamas, J. (2006). Influence of hydrology on heavy metal speciation and mobility in a Pb–Zn mine tailings. Environmental Pollution, 141, 310–320.
DOI: 10.1016/j.envpol.2005.08.043
Google Scholar
[44]
Rodriguez, L., Ruiz, E., Alonso-Azcarate, J., & Rincon, J. (2009). Heavy metal distribution and chemical spe- ciation in tailings and soils around a Pb–Zn mine in Spine. Journal of Environmental Management, 90, 1106–1116.
DOI: 10.1016/j.jenvman.2008.04.007
Google Scholar
[45]
Lead production; EMEP/EEA emission inventory guidebook (2013).
Google Scholar
[46]
Dobrin, D.J. and R. Potvin., (1992). Air Quality Monitoring studies in the Sudbury area 1978 to 1988. Technical Assessment section, Northeastern Region, Ontario Ministry of the Environment, Queen's Printer for Ontario, Toronto ON, Canada.
Google Scholar
[47]
Kesler, S.E., (1994). Mineral Resources, Economics and the Environment. Maxwell Macmillan International, New York.
Google Scholar
[48]
N. Fobi, M.J. Brown, P. Kowalski. Internal Medicine Residency Program, Atlanta, GA Lead smelting; International review.
Google Scholar
[49]
Wang, J., Lu, D., Chen, S. Y., Zheng, Z. A., & Liu, L. Q. (1994). Effects of environmental pollution on human health in lead/zinc mine of Fenghuang, Hunan Province. Chinese Journal of Public Health, 10(3), 121–122.
Google Scholar
[50]
Chiaradia, M., Gulson, B. L., & MacDonald, K. (1997).
Google Scholar
[51]
Grattan, J., Huxley, S., Karaki, L. A, Toland, H., Gilbertson, D., Pyatt, B., et al. (2002).
Google Scholar
[52]
Liu, H. Y., Probst, A., & Liao, B. H. (2005). Mental conta- mination of soils and crops affected by the Chenzhou lead/zinc mine spill (Hunan, Chian). Science of the Total Environment, 339, 153–166.
DOI: 10.1016/j.scitotenv.2004.07.030
Google Scholar
[53]
Liu, Y. S., Gao, Y., Wang, K. W., Mai, X. H., Chen, G. D., & Xu, T. W. (2005). Etiologic study on alimentary tract malignant tumor in villagers of high occurrence. China Tropical Medicine, 5, 1139–1141.
Google Scholar
[54]
Pusapukdepob, J., Sawangwong, P., Pulket, C., Satraphat, D., Saowakontha, S., & Panutrakul, S. (2009).
Google Scholar
[55]
Bai, X. L., & Yan, C. S. (2008). Effect of lead and cadmium pollution on occupationally exposed population health in lead and zinc mining area. Journal of Environment and Health, 25, 760–762.
Google Scholar
[56]
Kim, S., Kwon, H. J., Cheong, H. K., Choi, K., Jang, J. Y., Jeong, W. C., et al. (2008). Investigation on health effects of an abandoned metal mine. Journal of Korean Medical Science, 23, 452–458.
DOI: 10.3346/jkms.2008.23.3.452
Google Scholar
[57]
Leita, L., Enne, G., Nobili, M. D., Baldini, M., & Sequi, P. (1991). Heavy metal bioaccumulation in lamb and sheep bred in smelting and mining areas of S.W. Sardinia (Italy). Environmental Contamination and Toxicology, 446, 887–893.
DOI: 10.1007/bf01689734
Google Scholar
[58]
Pereira, R., Ribeiro, R., & Goncalves, F. (2004). Scalp hair analysis as a tool in assessing human exposure to heavy metals (S. Domingos mine, Portugal). Science of the Total Environment, 327, 81–92.
DOI: 10.1016/j.scitotenv.2004.01.017
Google Scholar
[59]
Tanquerel des Planches L (1839). Traite des maladies de plomb ou saturnines. Paris (name of publisher unavailable).
Google Scholar
[60]
Thackrah CT (1832). The effects of arts, trades, and professions, and of civic states and habits of living, on health and longevity: with suggestions for the removal of many of the agents which produce disease, and shorten the duration of life, 2nd ed. London, Longman.
Google Scholar
[61]
Childhood Lead Poisoning, WHO, (2010).
Google Scholar
[62]
Byers RK, Lord EE (1943). Late effects of lead poisoning on mental development. American Journal of Diseases of Children, 66: 471–494.
Google Scholar
[63]
Steve G. Gilbert, 1989. A Small Dose of toxicology; The Health Effects of Common Chemicals.
Google Scholar
[64]
WHO, IPCS. International lead poisoning prevention week of action 20-26 October 2013. (Available at http: /www. who. int/ipcs/lead_campaign/en/index. html. ).
Google Scholar
[65]
WHO (2009). Global health risks: mortality and burden of disease attributable to selected major risks. Geneva, World Health Organization. (Available at http: /whqlibdoc. who. int/publications/2009/9789241563871_eng. pdf, ).
Google Scholar