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Research Article

Assessment of the quality of the Owabi reservoir and its tributaries

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Article: 1492360 | Received 20 Mar 2018, Published online: 05 Jul 2018

References

  • Akoto, O., & Abankwa, E. (2014). Evaluation of Owabi reservoir (Ghana) water quality using factor analysis. Lakes and Reservoirs: Research and Management, 19(3), 174–182. doi:10.1111/lre.12066
  • Akoto, O., Bruce, T. N., & Darko, G. (2008). Heavy metals pollution profiles in streams serving the Owabi reservoir. African Journal of Environmental Science and Technology, 2(11), 354–359.
  • Akoto, O., Bruce, T. N., & Darko, G. (2010). Chemical and biological characteristics of streams in the Owabi watershed. Environmental Monitoring and Assessment, 161(1–4), 413–422. doi:10.1007/s10661-009-0757-4
  • Akoto, O, Gyamfi, O, Darko, G, & Barnes, V. R. (2017). Changes in water quality in the Owabi water treatment plant in Ghana. Applied water science, 7(1), 175–186.
  • Anderson, D., Glibert, P., & Burkholder, J. (2002). Harmful algal blooms and eutrophication: Nutrient sources, compositions, and consequences. Estuaries, 25(4), 704–726. doi:10.1007/BF02804901
  • AOAC. (1990). Official methods of analysis (15th Edn, Vol. 1). Arlington, Virginia:  Association of Official Analytical Chemists Inc.
  • Badu, M., Wemegah, D. D., Boadi, N. O., & Brown, F. A. (2013). Assessment of the nutrient load and selected heavy metals in the Owabi reservoir and its feeder waters. American Journal of Scientific and Industrial Research, 4(4), 337–343.
  • Baranyi, J., & Roberts, T. A. (1994). A dynamic approach to predicting bacterial growth in food. International Journal of Food Microbiology, 23(3–4), 277–294. Elsevier. doi:10.1016/0168-1605(94)90157-0
  • Bray, R. H., & Kurtz, L. T. (1945). Determination of total, organic, and available forms of phosphorus in soils. Soil Science, 59(1), 39–46. doi:10.1097/00010694-194501000-00006
  • Brönmark, C., & Hansson, L.-A. (2002). Environmental issues in lakes and ponds: Current state and perspectives. Environmental Conservation, 29(3), 290–307. doi:10.1017/S0376892902000218
  • Brylawski, B. J., & Miller, T. J. (2003). Bioenergetic modelling of the blue crab (Callinectes sapidus) using the fish bioenergetics (3. 0) computer program. Bulletin of Marine Science, 72(2), 491–504.
  • Carpenter, S., Caraco, N., Correll, D., Howarth, R., Sharpley, A., & Smith, V. (1998). Nonpoint pollution of surface waters with phosphorus and nitrogen. Ecological Applications, 8(3), 559–568. doi:10.1890/1051-0761(1998)008[0559:NPOSWW]2.0.CO;2
  • Chen, C.-W., Kao, C.-M., Chen, C.-F., & Dong, C.-D. (2007). Distribution and accumulation of heavy metals in the sediments of Kaohsiung Harbor, Taiwan. Chemosphere, 66(8), 1431–1440. doi:10.1016/j.chemosphere.2006.09.030
  • Conley, D. J., Paerl, H. W., Howarth, R. W., Boesch, D. F., Seitzinger, S. P., Havens, K. E., Lancelot, C., et al. (2009). Controlling eutrophication: Nitrogen and phosphorus. Science, 323(5917), 1014–1015. (New York, N.Y.). doi:10.1126/science.1167755
  • Dammo, M. N., & Sangodoyin, A. Y. (2014). Socio-economic activities around Alau Dam and the quality of raw water supply to Maiduguri Treatment Plant, Nigeria. Water Practice and Technology, 9(3), 386–391. doi:10.2166/wpt.2014.042
  • Department of Sustainable Natural Resources. (1995). Soil survey standard test method: Available phosphorus: Bray No 1 Extract, No. 1. pp. 1–4.
  • Diaz, R. J., & Rosenberg, R. (1995). Marine benthic hypoxia: A review of its ecological effects and the behavioural responses of benthic macrofauna. Oceanography and Marine Biology. An Annual Review, 33, 203–245.
  • Du Laing, G., Rinkelbe, J., Vandecasteele, B., Meers, E., & Tack, F. M. (2009). Trace metal behaviour in estuarine and riverine floodplain soils and sediments: A review. Science of the Total Environment, 407(13), 3972–3985. doi:10.1016/j.scitotenv.2008.07.025
  • Duan, T., Lou, W., Wang, X., & Xue, Q. (2007). Size-controlled synthesis of orderly organized cube-shaped lead sulfide nanocrystals via a solvothermal single-source precursor method. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 310(1–3), 86–93. doi:10.1016/j.colsurfa.2007.06.006
  • Gaur, V. K., Gupta, S. K., Pandey, S. D., Gopal, K., & Misra, V. (2005). Distribution of heavy metals in sediment and water of river Gomti. Environmental Monitoring and Assessment, 102(1–3), 419–433. doi:10.1007/s10661-005-6395-6
  • Ghrefat, H. A., Abu-Rukah, Y., & Rosen, M. A. (2011). Application of geoaccumulation index and enrichment factor for assessing metal contamination in the sediments of Kafrain Dam, Jordan. Environmental Monitoring and Assessment, 178(1–4), 95–109. doi:10.1007/s10661-010-1675-1
  • Hansen, P. J. (2002). Effect of high pH on the growth and survival of marine phytoplankton: Implications for species succession. Aquatic Microbial Ecology, 28(3), 279–288. doi:10.3354/ame028279
  • Hemond, H. F. H. F. F. (1990). Acid neutralizing capacity, alkalinity, and acid-base status of natural waters containing organic acids. Environmental Science & Technology, 24(10), 1486–1489. doi:10.1021/es00080a005
  • Howari, F. M., & Banat, K. M. (2001). Assessment of Fe, Zn, Cd, Hg, and Pb in the Jordan and Yarmouk river sediments in relation to their physicochemical properties and sequential extraction characterization. Water, Air and Soil Pollution, 132, 43–59. doi:10.1023/A:1012062814873
  • Huang, B., Zhao, Y., Shi, X., Yu, D., Zhao, Y., Sun, W., … Öborn, I. (2007). Source identification and spatial variability of nitrogen, phosphorus, and selected heavy metals in surface water and sediment in the riverine systems of a peri-urban interface. Journal of Environmental Science and Health. Part A, Toxic/Hazardous Substances & Environmental Engineering, 42(3), 371–380. England. doi:10.1080/10934520601144675
  • Jarvie, H. P, Whitton, B. A, & Neal, C. (1998). Nitrogen and phosphorus in east coast british rivers: speciation, sources and biological significance. Science Of The Total Environment, 210, 79-109.
  • Jensen, H. S., Kristensen, P., Jeppesen, E., & Skytthe, A. (1992). Iron: Phosphorus ratio in surface sediment as an indicator of phosphate release from aerobic sediments in shallow lakes. Hydrobiologia, 235-236(1), 731–743. doi:10.1007/BF00026261
  • Karikari, A. Y., & Ansa-Asare, O. D. (2006). Physico-chemical and microbial water quality assessment of Densu River of Ghana. West African Journal of Applied Ecology, 10(1), 1–12.
  • Kempster, P. L., Van Vliet, H. R., & Kuhn, A. (1997). The need for guidelines to bridge the gap between ideal drinking-water quality and that quality which is practically achievable and acceptable. Water South Africa, 23(2), 163–167.
  • Kirchman, D. L. (2016). Growth rates of microbes in the Oceans. Annual Review of Marine Science, Annual Reviews, 8, 285–309. doi:10.1146/annurev-marine-122414-033938
  • Kondratyev, S. (2002). Assessment of the present state of water resources of Lake Ladoga and its drainage basin using sustainable development indicators. Ecological Indicators, 2(1–2), 79–92. doi:10.1016/S1470-160X(02)00049-3
  • Levinton, J. S. (2001). Marine biology. In Chapter 4–The chemical and physical environment. New York, NY: Oxford University Press.
  • Maoulidi, M. (2010). A Water and Sanitation Needs Assessment for Kumasi, Ghana, pp. 1–32.
  • McGregor, D., Thompson, D., & Simon, D. (2000). Water quality and management in peri-urban Kumasi, Ghana. In Land-Water Linkages in Rural Watersheds Electronic Workshop (Case study16, p.66. Rome: FAO Land and Water Development Division.
  • Miao, S., DeLaune, R. D., & Jugsujinda, A. (2006). Influence of sediment redox conditions on release/solubility of metals and nutrients in a Louisiana Mississippi River deltaic plain freshwater lake. Science of the Total Environment, 371(1–3), 334–343. doi:10.1016/j.scitotenv.2006.07.027
  • Muller, G. (1969). Index of geoaccumulation in sediments of the Rhine River. Geo Journal, 2(3), 108–118.
  • Nkansah, M. A., Boadi, N. O., & Badu, M. (2010). Assessment of the quality of water from hand-dug wells in Ghana. Environmental Health Insights, 4, 7–12.
  • Ntekim, E. E. U., Ekwere, S. J., & Ukpong, E. E. (1993). Heavy metal distribution in sediments form Calabar River, southeastern Nigeria. Environmental Geology, 21, 237–241. doi:10.1007/BF00775913
  • Ntekim, E. E. U., & Okon, G. A. E. (1993). Trace metal distribution in the sediments of the Bight of Bonny, South Eastern Nigeria. Eighth Symposium on Coastal and Ocean Management, New Orleans, Louisiana, July 19-23.
  • Ntow, W. J. W. J. (2001). Organochlorine pesticides in water, sediment, crops, and human fluids in a farming community in Ghana. Archives of Environmental Contamination and Toxicology, 40(4), 557–563. doi:10.1007/s002440010210
  • Nwalo, F. (2010). Rate of water absorption and proximate analysis of different varieties of maize cultivated in Ikwo Local Government Area of Ebonyi State, Nigeria. African Journal of Biotechnology, 9(52), 8913–8917.
  • Olden, J. D., & Naiman, R. J. (2010). Incorporating thermal regimes into environmental flows assessments: Modifying dam operations to restore freshwater ecosystem integrity. Freshwater Biology, 55(1), 86–107. doi:10.1111/fwb.2009.55.issue-1
  • Pal, S., Chakraborty, S., Datta, S., & Mukhopadhyay, S. K. (2018). Spatio-temporal variations in total carbon content in contaminated surface waters at East Kolkata Wetland Ecosystem, a Ramsar Site. Ecological Engineering, 110(April 2017), 146–157. Elsevier. doi:10.1016/j.ecoleng.2017.11.009
  • Ratkowsky, D., Olley, J., & McMeekin, T. (1982). Relationship between temperature and growth rate of bacterial cultures. Journal of Bacteriology, 149(1), 1–5.
  • Ratkowsky, D. A., Lowry, R. K., McMeekin, T. A., Stokes, A. N., & Chandler, R. E. (1983). Model for bacterial culture growth rate throughout the entire biokinetic temperature model for bacterial culture growth rate throughout the entire biokinetic temperature range. Journal of Bacteriology, 154(3), 1222–1226.
  • Ross, T. (1996). Indices for performance evaluation of predictive models in food microbiology. Journal of Applied Bacteriology, 81(5), 501–508. Wiley Online Library. doi:10.1111/jam.1996.81.issue-5
  • Sawyer, C. N., McCarty, P. L., & Parkin, G. F. (2003). Chemistry for environmental engineering and science. New York, USA: McGraw-Hill.
  • Shafie, N. A., Aris, A. Z., Zakaria, M. P., Haris, H., Lim, W. Y., & Isa, N. M. (2013). Application of geoaccumulation index and enrichment factors on the assessment of heavy metal pollution in the sediments. Journal of Environmental Science and Health. Part A, Toxic/Hazardous Substances & Environmental Engineering, 48(2), 182–190. doi:10.1080/10934529.2012.717810
  • Squires, M. M., & Lesack, L. F. W. (2003). The relation between sediment nutrient content and macrophyte biomass and community structure along a water transparency gradient among lakes of the Mackenzie Delta. Canadian Journal of Fisheries and Aquatic Sciences, 60(September), 333–343. doi:10.1139/f03-027
  • Varol, M. (2011). Assessment of heavy metal contamination in sediments of the Tigris River (Turkey) using pollution indices and multivariate statistical techniques. Journal of Hazardous Materials, 195(July), 355–364. doi:10.1016/j.jhazmat.2011.08.051
  • Varol, M., & Şen, B. (2012). Assessment of nutrient and heavy metal contamination in surface water and sediments of the upper Tigris River, Turkey. Catena, 92(July), 1–10. doi:10.1016/j.catena.2011.11.011
  • WHO. 2011. Guidelines for drinking-water quality. WHO Chronicle, 38. doi:10.1016/S1462-0758(00)00006-6