Removal of Pb (II) from Aqueous Solution by Blast-Furnace Slags

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Abstract:

Five blast-furnace slags were used as adsorbents to remove Pb (II) from aqueous solution. Kinetic studies showed that the sorption process was best described by pseudo-second-order model. Among Langmuir, Freundlich and Temkin isotherms, the Freundlich isotherm had a better fit with the simulation of the adsorption of Pb (II).

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Advanced Materials Research (Volumes 726-731)

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2736-2741

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August 2013

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© 2013 Trans Tech Publications Ltd. All Rights Reserved

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[1] R. Jalali, H. Ghafourian, Y. Asef, S. J. Davarpansh, S. Sepehr: Hazard. Mater Vol. 92 (2002), pp.253-262

Google Scholar

[2] M. Martinez, N. Miralles, S. Hidalgo, N. Fiol, 1. Villaescusa, J. Poch: Hazard. Mater. Vol. 133 (2006), pp.203-211

Google Scholar

[3] Y. Bulut, Z. Tez: Environ. Sci. Vol. 19 (2007) 160-166

Google Scholar

[4] J. Goel, K. Kadirvelu, C. Rajagopal, V.K. Grag: Hazard. Mater. Vol. 125 (2005) , pp.211-220

Google Scholar

[5] Guidelines for drinking water quality, World Health Organization, Geneva, Switzerland, 1984, vol. 1 and 2

Google Scholar

[6] K. Jayaram, M. N. V. Prasad: Hazard. Mater. Vol. 169 (2009), pp.991-997

Google Scholar

[7] K. Yamashita, T. Ikenata, K. Tate and K.Nakahara: Vol. 85-87 (2002), p.110

Google Scholar

[8] N.Meunier, J.-F.Blais, R.Dayal Tyagi: Hydrometallurgy. Vol. 67 (2002), pp.19-30

Google Scholar

[9] M. T. K. Tsui, K. C. Cheung, N. F. Y. Tam, M. H. Wong: Chemosphere. Vol. 65 (1) (2006), pp.51-57.

Google Scholar

[10] C. P. Julioetal: Hazard. Mater. Vol. 162 (1) (2009), pp.270-280

Google Scholar

[11] V. K. Gupta, A. Rastogi: Hazard. Mater. Vol. 152 (1) (2008), pp.407-414

Google Scholar

[12] R. Nadeem, M. A. Hanif, F. Shaheen, S. Perveen, M. N. Zafar, T. Iqbal: Hazard. Mater. Vol. 150 (2) (2008), pp.335-342

Google Scholar

[13] B. C. Qi, C. Aldrich: Bioresource Technol. Vol. 99 (2008), pp.5595-5601

Google Scholar

[14] R. Apiratikul, P. Pavasant: Bioresource Technol. Vol. 99 (8) (2008), pp.2766-2777

Google Scholar

[15] N. Fiol, I. Villaescusa, M. Martinez, N. Miralles, J. Poch: Technol. Vol. 50 (2006), pp.132-140

Google Scholar

[16] S. S. Ahluwalia, D. Goyal: Eng. Life Sci. Vol. 5 (2005), pp.158-162

Google Scholar

[17] S.V. Dimitrova, D.R. Mehandgiev: Res. Vol. 32 (11) (1998), pp.3289-3292

Google Scholar

[18] Bruno Kostura, Hana Kulveitova Juraj Lesko: Water Research. Vol. 39 (2005), pp.1795-1802

Google Scholar

[19] Lena Johansson: the Science of the Total Environment. Vol. 229 (1999), pp.89-97

Google Scholar

[20] E. Nehrenheim, J. P. Gustafsson: Bioresource Technology. Vol. 99 (2008), pp.1571-1577

Google Scholar

[21] V.K. Gupta: Ind. Eng. Chem. Res. Vol. 37 (1998), pp.192-202

Google Scholar

[22] V.K. Gupta, S.K. Skrivastava and D.Mohan: Ind. Eng. Chem. Res. Vol. 36 (1997), pp.2207-2218

Google Scholar

[23] S.V. Dimitrova, Mehandgiev D. R: Construct Build Mater. Vol. 1 (3) (1996), pp.191-193

Google Scholar

[24] S. V. Dimitrova: Wat. Res. Vol. 36 (2002), pp.4001-4008

Google Scholar