Continuous adsorption of lead ions in a column packed with palm shell activated carbon

Issabayeva, G. and Aroua, M.K. and Sulaiman, N.M. (2008) Continuous adsorption of lead ions in a column packed with palm shell activated carbon. Journal of Hazardous Materials, 155 (1-2). pp. 109-113. ISSN 0304-3894, DOI https://doi.org/10.1016/j.jhazmat.2007.11.036.

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Abstract

The continuous adsorption of lead ions from aqueous solution on commercial, granular, unpretreated palm shell activated carbon (PSAC) was studied. Effect of pH, flow rates and presence of complexing agents (malonic and boric acids) were examined. The breakthrough period was longer at pH 5 indicating higher adsorption capacity of lead ions at higher pH. Increase of the flow rate, expectedly, resulted in the faster saturation of the carbon bed. Presence of complexing agents did not improve adsorption uptake of lead ions. However, presence of malonic acid resulted in smoother pH stabilization of solution compared to single lead and lead with boric acid systems. The results on continuous adsorption of lead were applied to the model proposed by Wang et al. Y.-H. Wang, S.-H. Lin, R.-S. Juang, Removal of heavy metals ions from aqueous solutions using various low-cost adsorbents, J. Hazard. Mater. B 102 (2003) 291-302. The agreement between experimental and modelled breakthrough curves was satisfactory at both pHs.

Item Type: Article
Funders: UNSPECIFIED
Additional Information: Cited By (since 1996):13 Export Date: 21 April 2013 Source: Scopus CODEN: JHMAD :doi 10.1016/j.jhazmat.2007.11.036 PubMed ID: 18179867 Language of Original Document: English Correspondence Address: Aroua, M.K.; Chemical Engineering Department, University of Malaya, 50603 Kuala Lumpur, Malaysia; email: mkaroua@um.edu.my : Chemicals/CASactivated carbon, 64365-11-3, 82228-96-4; boric acid, 10043-35-3, 11113-50-1, 11129-12-7, 14213-97-9; lead, 7439-92-1; malonic acid, 141-82-2, 156-80-9; boric acid, 11113-50-1; Boric Acids; Carbon, 7440-44-0; Lead, 7439-92-1; Malonates; malonic acid, 141-82-2; Water Pollutants, Chemical References: Grosse, D.W., (1990) Innovative Practices for Treating Waste Streams Containing Heavy Metals: A Waste Minimization Approach, , Technomic Pub, USA; Malaysia Environmental Quality Report 2002, Ministry of Science, Technology and the Environment of Malaysia (ISSN 0127-6433), 2002Guo, J., Lua, A.C., Preparation and characterization of adsorbents from oil palm fruit solid wastes (2000) J. Oil Palm Res., 12-1, pp. 64-70; Guo, J., Lua, A.C., Adsorption of sulphur dioxide onto activated carbons prepared from oil palm shells impregnated with potassium hydroxide (2000) J. Chem. Technol. Biotechnol., 75, pp. 971-976; G. Guo, The effect of local hydrodynamics on mass transfer in disordered porous media, Ph.D. Dissertation, Louisiana State University, USA, 2002Guo, J., Lua, A.C., Textural and chemical properties of adsorbent prepared from palm shell by phosphoric acid activation (2003) Mater. Chem. Phys., 80, pp. 114-119; Hussein, M.Z., Tarmizi, R.S.H., Zainal, Z., Ibrahim, R., Badri, M., Preparation and characterization of active carbons from oil palm shells (1996) Carbon, 34 (11), pp. 1447-1454; Wan Daud, W.M.A., Wan Ali, W.S., Sulaiman, M.Z., Effect of activation temperature on pore development in activated carbon produced from palm shell (2002) J. Chem. Technol. Biotechnol., 78, pp. 1-5; Wan Daud, W.M.A., Wan Ali, W.S., Comparison on pore development of activated carbon produced from palm shell and coconut shell (2004) Bioresour. Technol., 93, pp. 63-69; N. Abu Bakar, Adsorption studies of phenols in aqueous solution using activated carbon prepared from several part of oil palm tree, M.Sc. Thesis, University Putra Malaysia, 1999Othman, F., Salim, M.R., Ahmad, R., MOPAS for metal removal (1994) Proceedings of the 20th WEDC Conference, pp. 292-294. , Colombo, Sri Lanka; Salim, M.R., Othman, F., Imtiaj Ali, Md., Patterson, J., Hardy, T., Application of locally available materials for the treatment of organic polluted water (2002) J. Water Sci. Technol., 46, pp. 339-346; Issabayeva, G., Aroua, M.K., Sulaiman, N.M.N., Removal of lead from aqueous solutions on palm shell activated carbon (2006) Bioresour. Technol., 97 (18), pp. 2350-2355; Wang, Y.-H., Lin, S.-H., Juang, R.-S., Removal of heavy metals ions from aqueous solutions using various low-cost adsorbents (2003) J. Hazard. Mater. B, 102, pp. 291-302; Issabayeva, G., Aroua, M.K., Sulaiman, M.N., Electrodeposition of copper and lead on palm shell activated carbon in a flow-through electrolytic cell (2006) Desalination, 194 (1-3), pp. 192-201; Chen, J.P., Wang, X., Removing copper, zinc and lead ions by granular activated carbon in pretreated fixed-bed columns (2000) Sep. Purif. Technol., 19, pp. 157-167; Dimitrova, S.V., Use of granular slag columns for lead removal (2002) Water Res., 36, pp. 4001-4008; K. Yamashita, T. Ikenata, K. Tate, K. Nakahara, Method of removing dissolved heavy metals from aqueous waste liquids, US Patent 4,377,483 (1983)Ravat, C., Dumonceau, J., Monteil-Rivera, F., Acid/base and Cu(II) binding properties of natural organic matter extracted from wheat bran: modelling by the surface complexation model (2000) Water Res., 34 (4), pp. 1327-1339; Chen, J.P., Hong, L., Wu, S., Wang, L., Elucidation of interactions between metal ions and Ca-alginate based ion exchange resin by spectroscopic analysis and modelling simulation (2002) Langmuir, 18 (24), pp. 9413-9421; Chen, J.P., Lin, M.S., Equilibrium and kinetics metal ion adsorption onto a commercial H-type granular activated carbon: experimental and modelling studies (2001) Water Res., 2 (35), pp. 2385-2394; Corapcioglu, M.O., Huang, C.P., The adsorption of heavy metals onto hydrous activated carbon (1987) Water Res., 21, pp. 1031-1044; Chu, K.H., Hashim, M.A., Adsorption and desorption characteristics of zinc on ash particles derived from oil palm waste (2002) J. Chem. Technol. Biotechnol., 77, pp. 685-693; Goel, J., Kadirvelu, K., Rajagopal, C., Garh, V.K., Removal of lead (II) by adsorption using treated granular activated carbon: batch and column studies (2005) J. Hazard. Mater. B, 125, pp. 211-220; Chen, J.P., Wu, S., Chong, K.-H., Surface modification of a granular activated carbon by citric acid for enhancement of copper adsorption (2003) Carbon, 41, pp. 1979-1986; Ferrero-Garsia, M.A., Rivera-Utrilla, J., Bautista-Toledo, I., Moreno-Castilla, C., Adsorption of humic substances on activated carbon from aqueous solutions and their effect on the removal of Cr(III) ions (1998) Langmuir, 14, pp. 1880-1886; Petersen, F.W., van Deventer, J.S.J., The influence of pH, dissolved oxygen and organics on the adsorption of metal cyanides on activated carbon (1991) Chem. Eng. Sci., 46, pp. 3053-3065; Chu, K.H., Improved fixed bed models for metal biosorption (2004) J. Chem. Eng. Jpn., 97, pp. 233-239
Uncontrolled Keywords: Adsorption; Boric acid; Breakthrough curve; Lead ions; Malonic acid; Activated carbon; Complexation; Lead; pH effects; Metal ions; boron; carboxylic acid; cation; experimental study; pH; article; flow rate; heavy metal removal; waste water management; Arecaceae; Boric Acids; Carbon; Hydrogen-Ion Concentration; Malonates; Water Pollutants; Chemical; Water Purification.
Subjects: T Technology > TA Engineering (General). Civil engineering (General)
T Technology > TP Chemical technology
Divisions: Faculty of Engineering
Depositing User: Mr Jenal S
Date Deposited: 16 Jul 2013 08:12
Last Modified: 11 Dec 2013 03:25
URI: http://eprints.um.edu.my/id/eprint/7449

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