Modelling and Optimisation of Copper Adsorption in Solution by the Response Surface Method — Oak Academic Publishing
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Modelling and Optimisation of Copper Adsorption in Solution by the Response Surface Method
Laboratory of Water Energy Environment and Industrial Processes (LE3PI), Higher Polytechnic of Dakar (ESP), Cheikh Anta Diop University (UCAD), Dakar, Senegal
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Laboratory of Water Energy Environment and Industrial Processes (LE3PI), Higher Polytechnic of Dakar (ESP), Cheikh Anta Diop University (UCAD), Dakar, Senegal
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Laboratory of Water Energy Environment and Industrial Processes (LE3PI), Higher Polytechnic of Dakar (ESP), Cheikh Anta Diop University (UCAD), Dakar, Senegal
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Laboratory of Water Energy Environment and Industrial Processes (LE3PI), Higher Polytechnic of Dakar (ESP), Cheikh Anta Diop University (UCAD), Dakar, Senegal
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Laboratory of Water Energy Environment and Industrial Processes (LE3PI), Higher Polytechnic of Dakar (ESP), Cheikh Anta Diop University (UCAD), Dakar, Senegal
1 Laboratory of Water Energy Environment and Industrial Processes (LE3PI), Higher Polytechnic of Dakar (ESP), Cheikh Anta Diop University (UCAD), Dakar, Senegal
2 Laboratory of Water Energy Environment and Industrial Processes (LE3PI), Higher Polytechnic of Dakar (ESP), Cheikh Anta Diop University (UCAD), Dakar, Senegal
3 Laboratory of Water Energy Environment and Industrial Processes (LE3PI), Higher Polytechnic of Dakar (ESP), Cheikh Anta Diop University (UCAD), Dakar, Senegal
4 Laboratory of Water Energy Environment and Industrial Processes (LE3PI), Higher Polytechnic of Dakar (ESP), Cheikh Anta Diop University (UCAD), Dakar, Senegal
5 Laboratory of Water Energy Environment and Industrial Processes (LE3PI), Higher Polytechnic of Dakar (ESP), Cheikh Anta Diop University (UCAD), Dakar, Senegal
Copper is considered a heavy metal that can be toxic at certain concentrations and its presence in water is a potential threat to public health. These heavy metals also contribute to a remarkable degradation of the environment, hence the need for effective treatment methods to remove them. In this study, a mixture of titaniferous sand and calcium silicate was used as adsorbent material to eliminate copper in solution. The calcium silicate was synthesised from fluosilicic acid, which is a by-product of phosphoric acid manufacture. The titaniferous sand is a residue from a mining industry. Both adsorbents were characterised by infrared spectroscopy and X-ray fluorescence to determine their compositions and physicochemical properties. The response surfaces, through the Box-Behnken model, were used to model and optimise various adsorption parameters, namely initial copper concentration (A: 60 - 200 mg/L), adsorbent dose (B: 0.1 - 0.6 g) and pH (C: 4 - 10). The copper removal efficiency (98.92%), after statistical analysis, was obtained under the following optimal conditions: an adsorbent dose of 0.55 g, an initial copper concentration of 197 . 25 mg/L and a pH of 9.85. The study of the effects of the operating parameters showed that they had a positive effect on the copper removal efficiency.
Gaydukova, A., Kon, T., Kolesnikov, V. and Pokhvalitova, A. (2021) Environmental Technology & Innovation Adsorption of Fe3+ Ions onto Carbon Powder Followed by Adsorbent Electroflotation. Environmental Technology & Innovation, 23, Article ID: 101722. https://doi.org/10.1016/j.eti.2021.101722
Geny, B., Charles, A., Lejay, A. and Meyer, A. (2019) Pollution et stress oxidant. Revue Française d’Allergologie, 59, 174-176. https://doi.org/10.1016/j.reval.2019.02.195
Afolabi, F.O., Musonge, P. and Bakare, B.F. (2021) Application of the Response Surface Methodology in the Removal of Cu2+ and Pb2+ from Aqueous Solutions Using Orange Peels. Scientific African, 13, e00931. https://doi.org/10.1016/j.sciaf.2021.e00931
Labaali, Z., Kholtei, S. and Naja, J. (2020) Co2+ Removal from Wastewater Using Apatite Prepared through Phosphate Waste Rocks Valorization: Equilibrium, Kinetics and Thermodynamics Studies. Scientific African, 8, e00350. https://doi.org/10.1016/j.sciaf.2020.e00350
Yahya, M.D., Muhammed, I.B., Obayomi, K.S., Olugbenga, A.G. and Abdullahi, U.B. (2020) Optimization of Fixed Bed Column Process for Removal of Fe(II) and Pb(II) Ions from Thermal Power Plant Effluent Using. Scientific African, 10, e00649. https://doi.org/10.1016/j.sciaf.2020.e00649
Priya, V.N., Rajkumar, M., Mobika, J. and Sibi, S.P.L. (2022) Environmental Technology & Innovation Adsorption of as (V) Ions from Aqueous Solution by Carboxymethyl Cellulose Incorporated Layered Double Hydroxide/Reduced Graphene Oxide Nanocomposites: Isotherm and Kinetic Studies. Environmental Technology & Innovation, 26, Article ID: 102268. https://doi.org/10.1016/j.eti.2022.102268
Sikiru, A., Ajayi, O.A. and Taofeek, L. (2021) Application of Taguchi Design Approach to Parametric Optimization of Adsorption of Crystal Violet Dye by Activated Carbon from Poultry Litter. Scientific African, 13, e00850. https://doi.org/10.1016/j.sciaf.2021.e00850
Aliyu, A. (2019) Synthesis, Electron Microscopy Properties and Adsorption Studies of Zinc (II) Ions (Zn2+) onto As-Prepared Carbon Nanotubes (CNTs) Using Box-Behnken Design (BBD). Scientific African, 3, e00069. https://doi.org/10.1016/j.sciaf.2019.e00069
Es-said, A., Nafai, H., Lamzougui, G., Bouhaouss, A. and Bchitou, R. (2021) Comparative Adsorption Studies of Cadmium Ions on Phosphogypsum and Clay. Scientific African, 13, e00960. https://doi.org/10.1016/j.sciaf.2021.e00960
Maleki, F., Gholami, M. and Torkaman, R. (2021) Environmental Technology & Innovation Cobalt (II) Removal from Aqueous Solution by Modified Polymeric Adsorbents Prepared with Induced-Graft Polymerization: Batch and Continuous Column Study with Analysis of Breakthrough Behaviors. Environmental Technology & Innovation, 24, Article ID: 102054. https://doi.org/10.1016/j.eti.2021.102054
Melhi, S. (2022) Environmental Technology & Innovation Novel Carbazole-Based Porous Organic Frameworks (CzBPOF) for Efficient Removal of Toxic Pb(II) from Water: Synthesis, Characterization, and Adsorption Studies. Environmental Technology & Innovation, 25, Article ID: 102172. https://doi.org/10.1016/j.eti.2021.102172
Mustapha, S., et al. (2021) Fabrication of Porous Ceramic Pot Filters for Adsorptive Removal of Pollutants in Tannery Wastewater. Scientific African, 11, e00705. https://doi.org/10.1016/j.sciaf.2021.e00705
Okolo, B.I., et al. (2021) Coagulation Kinetic Study and Optimization Using Response Surface Methodology for Effective Removal of Turbidity from Paint Wastewater Using Natural Coagulants. Scientific African, 14, e00959. https://doi.org/10.1016/j.sciaf.2021.e00959
Blanco-Flores, A., Sánchez-Mendieta, V., Gutiérrez-Segura, E. and Vilchis-Nestor, A.R. (2016) Removal of Malachite Green Dye from Aqueous Solution through Inexpensive and Easily Available Tuffite, Bentonite and Vitreous Tuff Minerals. Revista Latinoamericana de Recursos Naturales, 12, 1-17.
Nwabanne, J.T. and Igbokwe, P.K. (2012) Adsorption Performance of Packed Bed Column for the Removal of Lead (II) Using Oil Palm Fibre. International Journal of Applied Science and Technology, 2, 106-115.
Sylvia, N., Hakim, L., Fardian, N. and Yunardi, Y. (2018) Adsorption Performance of Fixed-Bed Column for the Removal of Fe (II) in Groundwater Using Activated Carbon Made from Palm Kernel Shells. IOP Conference Series: Materials Science and Engineering, 334, Article ID: 012030. https://doi.org/10.1088/1757-899X/334/1/012030
Olaoye, R.A., Afolayan, O.D., Adeyemi, K.A., Ajisope, L.O. and Adekunle, O.S. (2020) Adsorption of Selected Metals from Cassava Processing Wastewater Using Cow-Bone Ash. Scientific African, 10, e00653. https://doi.org/10.1016/j.sciaf.2020.e00653
Mortula, M., Ghadban, A.A., Al-Karaghool, H.O. and Kaakani, M.W. (2011) Copper Removal via Adsorption. International Conference on Sustainable Systems and Environment, Sharjah, March 2011, 1-9. https://www.researchgate.net/publication/324574277_Copper_Removal_via_Adsorption
Shuhaimen, M.S., Abdulah, E.N., Salim, R.M., Samah, M.A.A., Omar, M.N. and Ahmad, M.N. (2019) Adsorption Study on the Removal of Copper Ions from Aqueous Solution Using Sodium Hydroxide-Modified Carica Papaya Peels. Malaysian Journal of Analytical Sciences, 23, 926-937.
Nwagbara, V.U., Sika, F.O., Iyama, W.A., Chigayo, K. and Kwaambwa, H.M. (2022) Evaluating the Potential Effectiveness of Moringa oleifera Seeds Biomass as an Adsorbent in the Removal of Copper (Cu) in Water. Journal of Geoscience and Environment Protection, 10, 120-143. https://doi.org/10.4236/gep.2022.103010
Hanzlík, P., Jehlička, J., Weishauptová, Z. and Šebek, O. (2004) Adsorption of Copper, Cadmium and Silver from Aqueous Solutions onto Natural Carbonaceous Materials. Plant, Soil and Environment, 50, 257-264. https://doi.org/10.17221/4030-PSE
Gürses, A., Doğar, Ç., Yalçin, M., Açikyildiz, M., Bayrak, R. and Karaca, S. (2006) The Adsorption Kinetics of the Cationic Dye, Methylene Blue, onto Clay. Journal of Hazardous Materials, 131, 217-228. https://doi.org/10.1016/j.jhazmat.2005.09.036
Bhattacharyya, K.G. and Sen Gupta, S. (2007) Adsorptive Accumulation of Cd(II), Co(II), Cu(II), Pb(II), and Ni(II) from Water on Montmorillonite: Influence of Acid Activation. Journal of Colloid and Interface Science, 310, 411-424. https://doi.org/10.1016/j.jcis.2007.01.080
Maglione, G. and Carn, M. (1975) Résumé Spectres Infrarouges Des Minéraux Salins Et Des Silicates Néoformes Dans Le Bassin Tchadien. Geochemistry Laboratory, ORSTOM Center, Dakar-Hann, 3-9.
Youcef, L. and Achour, S. (2006) Elimination du cuivre par des procédés de précipitation chimique et d’adsorption. Courrier du Savoir, No. 7, 59-65. http://archives.univ-biskra.dz/handle/123456789/537
Khan, J., Lin, S., Nizeyimana, J.C., Wu, Y., Wang, Q. and Liu, X. (2021) Removal of Copper Ions from Wastewater via Adsorption on Modified Hematite (α-Fe2O3) Iron Oxide Coated Sand. Journal of Cleaner Production, 319, Article ID: 128687. https://doi.org/10.1016/j.jclepro.2021.128687
Mourabet, M., El Rhilassi, A., El Boujaady, H., Bennani-Ziatni, M. and Taitai, A. (2017) Use of Response Surface Methodology for Optimization of Fluoride Adsorption in an Aqueous Solution by Brushite. Arabian Journal of Chemistry, 10, S3292-S3302. https://doi.org/10.1016/j.arabjc.2013.12.028