Arsenic contamination in groundwater and its proposed remedial measures
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Abstract
Arsenic contamination occurs in groundwater of Bangladesh mainly from the alluvial and deltaic sediments. Arsenic contamination of groundwater in Bangladesh was first detected more than a decade ago and the ’shallow tubewells’ were reported as the main source of arsenic contaminated water. From the nutritional and metabolic points of view, arsenic is likely to adversely affect human health and nutrition. Up to now, several studies have been carried out on this context; however, inadequate knowledge on arsenic sources, mobilization and transport still remains as a constraint due to lack of data, information and technological advances. Thus, a review study has been undertaken on the sources of arsenic, its causes, mobilization, transport, effects on human health, arsenic test procedures and removal methods, in the context of groundwater contamination in Bangladesh, and finally sustainable remedial measures of arsenic have been proposed. This study suggests that laboratory facilities for testing of arsenic and effects of enhanced groundwater pumping, phosphate fertilizer etc., need to be updated, expanded and studied. This review work is significant to further knowledge improvement, as the topic is general and worldwide. It can be concluded that the integration of the proposed remedial measures with the national geographic information system interface database relating to arsenic for analysis, production of hazard maps, and dissemination on television show for the planners, engineers, managers, field supervisors and affected people, can reach at the sustainable solution for mitigating arsenic and associated problems successfully in Bangladesh.
Keywords
Arsenic removal methods Mobilization Source TransportPreview
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- Ahmad, S. A.; Bandaranayake, D.; Khan, A. W.; Hadi, S. A.; Uddin, G.; Halim, M. A., (1997). Arsenic contamination in groundwater and arsenicosis in Bangladesh. Int. J. Environ. Health Res., 7(4), 271–276 (6 pages).CrossRefGoogle Scholar
- Ahmed, K. M.; Bhattacharya, P.; Hasan, M. A.; Akhter, S. H.; Alam, S. M. M.; Bhuyian, M. A. H., (2004). Arsenic enrichment in groundwater of the alluvial aquifers in Bangladesh: An Overview. Appl. Geochem., 19(2), 181–200 (20 pages).CrossRefGoogle Scholar
- Ahmed, M. F., (2001). An overview of arsenic removal technologies in Bangladesh and India. Technologies for arsenic removal from drinking water, a compilation of papers presented at the International workshop on technologies for arsenic removal from drinking water organized by Bangladesh University of Engineering and Technology (BUET), Dhaka, Bangladesh and The United Nations University (UNU), Tokyo, Japan, 251–269 (19 pages).Google Scholar
- Alam, M. B.; Sattar, M. A., (2000). Assessment of As contamination in soils and waters in some areas of Bangladesh. Water Sci. Tech., 42(7–8), 185–193 (9 pages).Google Scholar
- Aryafar, A.; Doulati Ardejani, F., (2009). Anisotropy and bedding effects on the hydro geological regime in a confined aquifer to design an appropriate dewatering system. Int. J. Environ. Sci. Tech., 6(4), 563–570 (8 pages).Google Scholar
- Ashraf, M. A.; Palit, S. K., (2008). Arsenic screening of groundwater from tubewells located within Chittagong City. Research Report, CUET and IEB Chittagong Centre.Google Scholar
- BAMWSP; DFID; WaterAid Bangladesh, (2001). Rapid assessment of household level arsenic removal technologies. Phase-I and Phase-II, Final Report WS Atkins International Limited.Google Scholar
- BGS, (1999a). Groundwater studies for arsenic contamination in Bangladesh. Main Report and Supplemental volumes 1–3, Government of the Peoples Republic of Bangladesh, Ministry of Local Government, Rural Development and Cooperatives, Department of Public Health Engineering, Dhaka, Bangladesh and Mott MacDonald Int. Ltd. UKGoogle Scholar
- BGS, (1999b). Arsenic contamination of ground water in Bangladesh. Technical Report, WC/00/19, 1.Google Scholar
- BGS; DPHE, (2001). Arsenic contamination of groundwater in Bangladesh. In: Kinniburgh DG, Smedley PL, (Ed). BGS Technical Report. WC/00/19, Keyworth: BGS.Google Scholar
- BGS; MacDonald, M., (2000). Phase I: Groundwater Studies of Arsenic Contamination in Bangladesh. Executive Summary, Main Report, WC/00/19.Google Scholar
- Bhattacharya, P.; Chatterjee, D.; Jacks G., (1997). Occurrence of arsenic contaminated groundwater in alluvial aquifers from Delta Plains, Eastern India: Options for safe drinking water supply. Int. J. Water Resour. Dev., 13(1), 79–92 (14 pages).CrossRefGoogle Scholar
- Bhattacharya, P.; Jacks, G.; Ahmed, K. M.; Routh, J.; Khan, A. A., (2002). Arsenic in groundwater of the Bengal delta plain aquifers in Bangladesh. Bull. Environ. Contam. Tech., 69(4), 538–545 (8 pages).CrossRefGoogle Scholar
- Biswas, B. K.; Dhar, R. K.; Samanta, G.; Mandal, B. K.; Chakraborti, D.; Faruk, I., (1998). Detailed study report of Samta, one of the arsenic-affected villages of Jessore district, Bangladesh. Curr. Sci., 74(2), 134–145 (12 pages).Google Scholar
- Brömssen, M. V.; Jakariya, M.; Bhattacharya, P.; Ahmed, K. M.; Hasan, M. A.; Sracek, O., (2007). Targeting low-arsenic aquifers in Matlab upazila, Southeastern Bangladesh. Sci. Total Environ., 379(2–3), 121–132 (12 pages).CrossRefGoogle Scholar
- Caldwell, B. K.; Caldwell, J. C.; Mitra, S. N.; Smith, W., (2003). Tubewells and arsenic in Bangladesh: Challenging a public health success story. Int. J. Popul. Geogr., 9(1), 23–38 (16 pages).CrossRefGoogle Scholar
- Chen, Y.; Ahsan, H., (2004). Cancer burden from arsenic in drinking water in Bangladesh. Am. J. Public Health, 94(5), 741–744 (4 pages).CrossRefGoogle Scholar
- Cheng, Z; vanGeen, A.; Jing, C.; Meng, X.; Seddique, A. A.; Ahmed, K. M., (2004). Performance of a household-level arsenic removal system during 4-month deployments in Bangladesh. Environ. Sci. Tech., 38, 3442–3448 (7 pages).CrossRefGoogle Scholar
- Chowdhury, T. R.; Basu, G. K.; Mandal, B. K.; Biswas, B. K.; Samanta, G.; Chowdhury, U. K., (1999). Arsenic poisoning in the Ganges Delta. Nature, 401, 545–546 (2 pages).Google Scholar
- Christen, K., (2001). The arsenic threat worsens. Environ. Sci. Tech., 35(13), 286A–291A (6 pages).CrossRefGoogle Scholar
- Creger, T. L.; Peryea, F. J., (1994). Phosphate fertilizer enhances As uptake by apricot liners grown in Lead-Arsenate-enriched soil. Horticultural Sci., 29(2), 88–92 (5 pages).Google Scholar
- Dikinya, O.; Areola, O., (2010). Comparative analysis of heavy metal concentration in secondary treated wastewater irrigated soils cultivated by different crops. Int. J. Environ. Sci. Tech., 7(2), 337–346 (10 pages).Google Scholar
- Erickson, B. E., (2003). Field kits to provide accurate measure of As in groundwater. Environ. Sci.Tech., 37(1), 35A–38A (4 pages).CrossRefGoogle Scholar
- European Union (EU), (1998). Council directive 98/83/EC on the quality of water intended for human consumption. J. Eur. Commun., L 330/32, 32–54 (23 pages).Google Scholar
- Fazal, M. A.; Kawachi, T.; Ichion, E., (2001a). Extent and severity of groundwater arsenic contamination in Bangladesh. Water Int., 26(3), 370–379 (10 pages).CrossRefGoogle Scholar
- Fazal, M. A.; Kawachi, T.; Ichion, E., (2001b). Validity of the latest research findings on causes of groundwater arsenic contamination in Bangladesh. Water Int., 26(2), 380–389 (10 pages).CrossRefGoogle Scholar
- Feng, X. D.; Huang, W. L.; Yang, C.; Dang, Z., (2009). Chemical speciation of fine particle bound trace metals. Int. J. Environ. Sci. Tech., 6(3), 337–346 (10 pages).Google Scholar
- Geen, A. V.; Cheng, Z.; Seddique, A. A.; Hoque, M. A.; Gelman, A.; Graziano, J. H., (2005). Reliability of a commercial kit to test groundwater for arsenic in Bangladesh. Environ. Sci. Tech., 39(1), 299–303 (5 pages).CrossRefGoogle Scholar
- Geen, A. V.; Zheng, Y.; Versteeg, R.; Stute, M.; Horneman, A.; Dhar, R., (2003). Spatial variability of arsenic in 6000 tubewells in a 25 km2 area of Bangladesh. Water Resour. Res., 39(5), 1140–1155 (16 pages).Google Scholar
- Gomez-Caminero, A.; Howe, P.; Hughes, M.; Kenyon, E.; Lewis, D. R.; Moore, M., (2001). Arsenic and arsenic compounds. Environmental Health Criteria 224, United Nations Environment Programme, the International Labour Organization, and the World Health Organization.Google Scholar
- Harvey, C. F., (2002). Groundwater flow in the Ganges Delta. Sci., 296, 1563–1563 (1 pages).CrossRefGoogle Scholar
- Harvey, C. F.; Ashfaque, K. N.; Yu, W.; Badruzzaman, A. B. M.; Ali, M. A.; Oates, P. M., (2006). Groundwater dynamics and arsenic contamination in Bangladesh. Chem. Geology, 228 (1–3), 112–136 (25 pages).CrossRefGoogle Scholar
- Harvey, C. F.; Swartz, C. H.; Badruzzaman, A. B. M.; Keon-Blute, N.; Yu, W.; Ali, M. A., (2002). Arsenic mobility and groundwater extraction in Bangladesh. Sci., 298(5598), 1602–1606 (5 pages).CrossRefGoogle Scholar
- Hering, J. G.; Chen, P.; Wilkie, J. A.; Elimelech, M., (1997). Arsenic removal from drinking water during coagulation. J. Environ. Eng., 123(8), 800–807 (8 pages).CrossRefGoogle Scholar
- Hering, J. G.; Chen, P. Y.; Wilkie, J. A.; Elimelech, M.; Liang, S., (1996). Arsenic removal by ferric chloride. J. Am. Water Works Assoc. (AWWA), 88(4), 155–167 (13 pages).Google Scholar
- Horneman, A.; vanGeen, A.; Kent, D. V.; Mathe, P. E.; Zheng, Y.; Dhar, R. K., (2004). Decoupling of As and Fe release to Bangladesh groundwater under reducing conditions, Part I: Evidence from sediment profiles. Geochim Cosmochim Acta, 68(17), 3459–3473 (15 pages).CrossRefGoogle Scholar
- Hossain, M. F., (2006). Arsenic contamination in Bangladesh-An overview. Agric. Ecosyst. Environ., 113(1–4), 1–16 (16 pages).CrossRefGoogle Scholar
- Hussam, A.; Alauddin, M.; Khan, A. H.; Rasul, S. B.; Munir, A. K. M., (1999). Evaluation of arsine generation in arsenic field kit. Environ. Sci. Tech., 33(20), 3686–3688 (3 pages).CrossRefGoogle Scholar
- Islam, F. S.; Gault, A. G.; Boothman, C.; Polya, D. A.; Charnock, J. M.; Chatterjee, D., (2004). Role of metal-reducing bacteria in arsenic release from Bengal delta sediments. Nature, 430(6995), 68–71 (4 pages).CrossRefGoogle Scholar
- Jha, B. R.; Waidbacher, H.; Sharma, S.; Straif, M., (2010). Study of agricultural impacts through fish base variables in different rivers. Int. J. Environ. Sci. Tech., 7(3) 609–615 (7 pages).Google Scholar
- Jakariya, M.; Bhattacharya, P., (2007). Use of GIS in local level participatory planning for arsenic mitigation: A case study from Matlab Upazila, Bangladesh. J. Environ. Sci. Health, 42(12), 1933–1944 (12 pages).CrossRefGoogle Scholar
- Jakariya, M.; Bromssen, M. V.; Jacks, G.; Chowdhury, A. M. R.; Ahmed, K. M.; Bhattacharya, P., (2007b). Searching for a sustainable arsenic mitigation strategy in Bangladesh: Experience from two Upazilas. Int. J. Environ. Pollut., 31(3–4), 415–430 (16 pages).CrossRefGoogle Scholar
- Jakariya, M.; Chowdhury, A. M. R.; Hossain, Z.; Rahman, M.; Sarker, Q.; Khan, R. I., (2003). Sustainable community-based safe water options to mitigate the Bangladesh arsenic catastrophe—An experience from two Upazilas. Curr. Sci., 85(2), 141–146 (6 pages).Google Scholar
- Jakariya, M.; Vahter, M.; Rahman, M.; Wahed, M. A.; Hore, S. K.; Bhattacharya, P., (2007a). Screening of arsenic in tubewell water with field test kits: Evaluation of the method from public health perspective. Sci. Total Environ., 379(2–3), 167–175 (9 pages).CrossRefGoogle Scholar
- Jekel, M. R., (1994). Removal of arsenic in drinking water treatment. In: J. O. Nriagu (Ed.), Arsenic in the Environment, Part 1: Cycling and Characterization, John Wiley & Sons, Inc., New York.Google Scholar
- JICA (Japanese International Cooperation Agency), (2002). The study on ground water development of deep aquifers for safe drinking water supply to arsenic affected areas in Western Bangladesh. Kokusai Kogyo Co. Ltd., and Mitsui Mineral Development Engineering Co. Ltd.Google Scholar
- Joshi, A.; Chaudhury, M., (1996). Removal of arsenic from groundwater by iron-oxide-coated sand. J. Environ. Eng., 122(8), 769–771 (3 pages).CrossRefGoogle Scholar
- Klump, S.; Kipfer R.; Cirpka O. A.; Harvey, C. F.; Brennwald, M. S.; Ashfaque, K. N., (2006). Groundwater dynamics and arsenic mobilization in Bangladesh assessed using noble gases and tritium. Environ. Sci. Tech., 40(1), 243–250 (8 pages).CrossRefGoogle Scholar
- Larsen, F.; Pham, N. Q.; Dang, N. D.; Postma, D.; Jessen, S.; Pham, V. H., (2008). Controlling geological and hydrogeological processes in an arsenic contaminated aquifer on the red river flood plain, Vietnam. Appl. Geochem., 23(11), 3099–3115 (17 pages).CrossRefGoogle Scholar
- Mahzuz, H. M. A.; Alam, R.; Alam, N. M.; Basak, R.; Islam, S. M., (2009). Use of arsenic contaminated sludge in making ornamental bricks. Int. J. Environ. Sci. Tech., 6(2) 291–298 (8 pages).Google Scholar
- Mandal, B. K.; Chowdhury, T. R.; Samanta, G.; Mukherjee, D. P.; Chanda, C. R.; Saha, K. C., (1998). Impact of safe water for drinking and cooking on five arsenic-affected families for 2 years in West Bengal, India. Sci. Total Environ., 218(2–3), 185–201 (17 pages).CrossRefGoogle Scholar
- McArthur, J. M.; Banerjee, D. M.; Hudson-Edwards, K. A.; Mishra, R.; Purohitb, R.; Ravenscroft, P., (2004). Natural organic matter in sedimentary basins and its relation to arsenic in anoxic ground water: The example of West Bengal and its worldwide implications. Appl. Geochem., 19(8), 1255–1293 (39 pages).CrossRefGoogle Scholar
- MoA, (2004). Handbook of agricultural statistics. Sector Monitoring Unit, Ministry of Agriculture (MoA).Google Scholar
- Oremland, R. S.; Stolz, J. F., (2005). Arsenic, microbes and contaminated aquifers. Trend. Microbiol., 13(2), 45–49 (5 pages).CrossRefGoogle Scholar
- Parsa, J.; Etemad Shahidi, A., (2010). Prediction of tidal excursion length in estuaries due to the environmental changes. Int. J. Environ. Sci. Tech., 7(4) 675–686 (12 pages).Google Scholar
- Peryea, F. J.; Kammereck, R., (1997). Phosphate-enhanced movement of arsenic out of lead arsenate contaminated topsoil and through uncontaminated subsoil. Water Air Soil Pollut., 93(1–4), 243–254 (12 pages).Google Scholar
- Polizzotto, M. L.; Harvey, C. F.; Li, G.; Newville, M.; Fendorf, S., (2006). Solid-phases and desorption processes of arsenic within Bangladesh sediments. Chem. Geology, 228(1–3), 97–111 (15 pages).CrossRefGoogle Scholar
- Rahman, M.; Vahter, M.; Wahed, M. A.; Sohel, N.; Yunus, M.; Streatfield, P. K., (2006). Prevalence of arsenic exposure and skin lesions. A population based survey in Matlab, Bangladesh. J. Epidemiol. Commun. Health, 60, 242–248 (7 pages).CrossRefGoogle Scholar
- Rahman, M. M.; Mukherjee, D.; Sengupta, M. K.; Chowdhury, U. K.; Lodh, D.; Chanda, C. R., (2002). Effectiveness and reliability of arsenic field testing kits: Are the million dollar screening projects effective or not? Environ. Sci. Tech., 36(24), 5385–5394 (10 pages).CrossRefGoogle Scholar
- Reza, R.; Singh, G., (2010). Heavy metal contamination and its indexing approach for river water. Int. J. Environ. Sci. Tech., 7(4), 785–792 (8 pages).Google Scholar
- Root, R. A.; Vlassopoulos, D.; Rivera, N. A.; Rafferty, M. T.; Andrews, C.; O’Day, P. A., (2009). Speciation and natural attenuation of arsenic and iron in a tidally influenced shallow aquifer. Geochimica et Cosmochimica Acta, 73(19), 5528–5553 (26 pages).CrossRefGoogle Scholar
- Safiuddin, M.; Karim, M. M., (2001). Groundwater arsenic contamination in Bangladesh: Causes, effects and remediation. Proceedings of the 1st IEB International Conference and 7th Annual Paper Meet, The Institution of Engineers, Chittagong Center, Bangladesh.Google Scholar
- Samarghandi, M. R.; Nouri, J.; Mesdaghinia, A. R.; Mahvi, A. H.; Nasseri, S.; Vaezi, F., (2007). Efficiency removal of phenol, lead and cadmium by means of UV/ TiO2/ H2O2 processes. Int. J. Environ. Sci. Tech., 4(1), 19–26 (8 pages).CrossRefGoogle Scholar
- Sarkar, A. R.; Rahman, O. T., (2001). In-situ removal of arsenic-experiences of DPHE-DANIDA pilot project. Technologies for arsenic removal from drinking water, a compilation of papers presented at the International workshop on technologies for arsenic removal from drinking water organized by Bangladesh University of Engineering and Technology (BUET), Dhaka, Bangladesh and The United Nations University (UNU), Tokyo, Japan, 201–206 (6 pages).Google Scholar
- Smedley, P. L.; Kinniburgh, D. G., (2002). A review of the source, behavior and distribution of arsenic in natural waters. Appl. Geochem., 17(5), 517–568 (52 pages).CrossRefGoogle Scholar
- Sorg, T. J.; Logsdon, G. S., (1974). Treatment technology to meet the interim primary drinking water regulations for inorganics: Part 2. J. Am. Water Works Assoc., 70(7), 379–393 (15 pages).Google Scholar
- Stanger, G., (2005). A Paleo-Hydrogeological model for arsenic contamination in Southern and South-East Asia. Environ. Geochem. Health, 27(4), 359–368 (10 pages).CrossRefGoogle Scholar
- Steinmaus, C. M.; George, C. M.; Kalman, D. A.; Smith, A. H., (2006). Evaluation of two new arsenic field test kits capable of detecting arsenic water concentrations close to 10 μg/L. Environ. Sci. Tech., 40(10), 3362–3366 (5 pages).CrossRefGoogle Scholar
- Stollenwerk, K. G.; Breit, G. N.; Welch, A. H.; Yount, J. C.; Whitney, J. W.; Foster, A. L., (2007). Arsenic attenuation by oxidized aquifer sediments in Bangladesh. Sci. Total Environ., 379(2–3), 133–150 (18 pages).CrossRefGoogle Scholar
- Stute, M.; Zheng, Y.; Schlosser, P.; Horneman, A.; Dhar, R. K.; Datta, S., (2007). Hydrogeological control of As concentrations in Bangladesh groundwater. Water Resour. Res., 43, W09417.Google Scholar
- The Daily Star, (2004a). Arsenic-free water from next month. 4 (292).Google Scholar
- The Daily Star, (2004b). Govt. okays marketing of anti-arsenic technologies. 4 (266).Google Scholar
- The Daily Star, (2006). A wonder filter that gives arsenic-free water. 5 (689).Google Scholar
- Tondel, M.; Rahman, M.; Magnuson, A.; Chowdhury, I. A.; Faruquee, M. H.; Samad, S. A., (1999). The relationship of arsenic levels in drinking water and the prevalence rate of skin lesions in Bangladesh. Environ. Health Perspect., 107, 727–729 (3 pages).CrossRefGoogle Scholar
- Uddin, M. M.; Harun-Ar-Rashid, A. K. M.; Hossain, S. M.; Hafiz, M. A.; Nahar, K.; Mubin, S. H., (2006). Slow arsenic poisoning of the contaminated groundwater users. Int. J. Environ. Sci. Tech., 3(4) 447–453 (7 pages).CrossRefGoogle Scholar
- USEPA, (2006). Geologic controls on arsenic distribution and mobilization in pennsylvania groundwater. United State Environmental Protection Agency. EPA Grant Number: F5B20305.Google Scholar
- Urik, M.; Littera, P.; Sevc, J.; KolencÃk, M.; CerÃanskÃ, S., (2009). Removal of arsenic (V) from aqueous solutions using chemically modified sawdust of spruce (Picea abies): Kinetics and isotherm studies. Int. J. Environ. Sci. Tech., 6(3) 451–456 (6 pages).Google Scholar
- Wegelin, M.; Gechter, D.; Hug, S.; Mahmud, A.; Motaleb, A., (2000). SORAS-a simple arsenic removal process.Google Scholar
- WHO, (1993). Guidelines for drinking-water quality. World Health Organization, Geneva.Google Scholar