204
A. K. Thakur and M. Kumar
Gogoi A, Biswas S, Bora J, Bhattacharya SS, Kumar M (2015) Effect of vermicomposting on copper
and zinc removal in activated sludge with special emphasis on temporal variation. Ecohydrol
Hydrobiol 15(2):101–107
Grandjean P, Olsen JH, Jensen OM, Juel K (1992) Cancer incidence and mortality in workers
exposed to fluoride. JNCI: J Natl Cancer Inst 84(24):1903–1909
Grimsrud TK, Peto J (2006) Persisting risk of nickel related lung cancer and nasal cancer among
Clydach refiners. Occup Environ Med 63(5):365–6
Gun JVD (2012) Groundwater and global change: trends, opportunities, and challenges. United
Nations Educational, Scientific and Cultural Organization (UNESCO), Paris
Gupta N, Fox TC (1999) Hydrogeologic modeling for permeable reactive barriers. J Hazard Mater
68(1–2):19–39
Hake CL, Stewart RD (1977) Human exposure to tetrachloroethylene: inhalation and skin contact.
Environ Health Perspect 21: 231–238
Hallanger Johnson JE, Kearns AE, Doran PM, Khoo TK, Wermers RA (2007) Fluoride-related
bone disease associated with habitual tea consumption. Mayo Clin Proc 82(6):719–24
Han ZY, Lv XB, Di L (2018, September) Experiment study on the remediation effects of Copper
Polluted Groundwater by PRB with the volcanic as reactive medium. In 2018 7th International
Conference on Energy and Environmental Protection (ICEEP 2018). Atlantis Press
Hashim MA, Mukhopadhyay S, Sahu JN, Sengupta B (2011) Remediation technologies for heavy
metal contaminated groundwater. J Environ Manage 92(10):2355–2388
Hiller KA, Foreman KH, Weisman D, Bowen JL (2015) Permeable reactive barriers designed to
mitigate eutrophication alter bacterial community composition and aquifer redox conditions.
Appl Environ Microbiol 81(20):7114–7124
Hodgson MJ, Heyl AE, Van Thiel DH (1989) Liver disease associated with exposure to 44 1,1,1trichloroethane. Arch Intern Med 149:1793–1798
Holmes RR, Hart ML, Kevern JT (2017) Heavy metal removal capacity of individual components
of permeable reactive concrete. J Contam Hydrol 196:52–61
Hu B, Song Y, Wu S, Zhu Y, Sheng G (2019) Slow released nutrient-immobilized biochar: a novel
permeable reactive barrier filler for Cr(VI) removal. J Mol Liq 286(15):110876
Huang T, Li D, Liu K, Zhang Y (2015) Heavy metal removal from MSWI fly ash by electrokinetic
remediation coupled with a permeable activated charcoal reactive barrier. Sci Rep 5. Article
number: 15412. Nature.com
Indraratna B, Pathirage U, Banasiak LJ (2014) Remediation of acidic groundwater by way of
permeable reactive barrier. Environ Geotech
Indraratna B, Pathirage U (2015) Installation of a permeable reactive barrier in the containment of
acid pollution
Jarvis AP, Moustafa M, Orme PHA, Younger PL (2006) Effective remediation of grossly polluted
acidic, and metal-rich, spoil heap drainage using a novel, low-cost, permeable reactive barrier in
Northumberland, UK. Environ Pollut 143(2):261–268
Kagamimori S, Makino T, Hiramaru Y, Kawano s, Kato T, Nogawa K, Kobayashi E, Sakamoto N,
Fukushima M, Ishizaki A, Tanigawa K, Azami S (1973) Studies concerning the effects of the respiratory organs of atmospheric pollution caused by dust consisting chiefly of manganese. (Second
report) Concerning the changes in the effects on the human organism when the environment is
improved. Nihon Koshu Eiser Gakkai Shi (J Japan Soc Pub Health) 20:413–420, 1973
Kcil A, Koldas S (2006) Acid mine drainage (AMD) causes, treatment, and case studies. J Clean
Prod 14:1139–1145
Kopp SJ, Glonek T, Perry HM et al (1982) Cardiovascular actions of cadmium at environmental
exposure levels. Science 217:837–839
Kumar CP (2012) Groundwater modelling software—capabilities and limitations. IOSR J Environ
Sci, Toxicol Food Technol (IOSR-JESTFT) 1(2):46–57. ISSN: 2319-2402, ISBN: 2319-2399
Kumar M, Furumai H, Kurisu F, Kasuga I (2010) Evaluating the mobile heavy metal pool in
soakaway sediment, road dust and soil through sequential extraction and isotopic exchange.
Water Sci Technol 62(4):920–928
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