ISSN: 0256-1115 (print version) ISSN: 1975-7220 (electronic version)
Copyright © 2024 KICHE. All rights reserved

Articles & Issues

Language
English
Conflict of Interest
In relation to this article, we declare that there is no conflict of interest.
Publication history
Received August 23, 2007
Accepted January 17, 2008
articles This is an Open-Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/bync/3.0) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.
Copyright © KIChE. All rights reserved.

All issues

Zirconium mesostructures immobilized in calcium alginate for phosphate removal

Center for Environmental Technology Research, Korea Institute of Science and Technology, P.O.BOX 131, Cheongryang, Seoul 130-650, Korea 1Chemical Resources Laboratory, Tokyo Institute of Technology, Nagatsuta, Midori-ku, Yokohama 226-8503, Japan
Korean Journal of Chemical Engineering, September 2008, 25(5), 1040-1046(7), 10.1007/s11814-008-0170-7
downloadDownload PDF

Abstract

Eutrophication caused by the excessive supply of phosphate to water bodies has been considered as one of the most important environmental problems. In this study, the powder of zirconium mesostructure (ZM), which was prepared with the template of surfactant, was immobilized in calcium alginate for practical application and the resulting material was tested to evaluate the phosphate removal efficiency. Sorption isotherms and kinetic parameters were obtained by using the entrapped ZM beads with 30 to 60% of ZM. The maximum sorption capacity increased with the higher ZM content. Qmax in Langmuir isotherm was 51.74 mg/g for 60% of ZM with 7 mm of size. The smaller the particle size of the ZM beads, the faster the rate of phosphate removal, because the phosphate ions had less distance to reach the internal pores of the immobilized ZM beads. Chemical and electrochemical regeneration techniques were compared. Phosphates adsorbed on the ZM beads were effectively desorbed with NaCl, NaOH, and Na2SO4 solutions. An electrochemical regeneration system consisting of an anion exchange membrane between two platinum-coated titanium electrodes was successfully used to desorb and regenerate the phosphate-saturated ZM beads. Complete regeneration was reached under optimal experimental conditions. Chemical and electrochemical regeneration proved the reusability of the bead form of the entrapped ZM, and will enhance the economical performance of the phosphate treatment process.

References

Aguilar MI, Saez J, Llorens M, Soler A, Ortuno JF, Water Res., 36, 2910 (2002)
Brdjanovic D, Slame A, van Loosdrecht MCM, Hooijmans CM, Alaerts GJ, Heijnen JJ, Water Res., 32, 200 (1998)
Ebeling JM, Sibrell PL, Ogden SR, Summerfelt ST, Aquacult. Eng., 29, 23 (2003)
Jaffer Y, Clark TA, Pearce P, Parsons SA, Water Res., 36, 1834 (2002)
Zhu XP, Jyo A, Water Res., 39, 2301 (2005)
Meganck MTI, G. M. Faup, Eds., Enhanced biological phosphorus removal from watewaters, CRC Press, Roca Raton, FL (1988)
Urano K, Tachikawa H, Ind. Eng. Chem. Res., 30, 1893 (1991)
Hano T, Takanashi H, Hirata M, Urano K, Eto S, Water Sci. Technol., 35, 39 (1997)
Zeng L, Li XM, Liu JD, Water Res., 38, 1318 (2004)
Bastin O, Janssens F, Dufey J, Peeters A, Ecol. Eng., 12, 339 (1999)
Berner RA, Earth. Planet. Sc. Lett., 18, 77 (1973)
Kobayashi E, Uematsu K, Nagawa Y, Sugai M, Nippon Kagaku Kaishi, 1412 (1982)
Haron MJ, Wasay SA, Tokunaga S, Water Environ. Res., 69, 1047 (1997)
Zhao DY, Sengupta AK, Water Sci. Technol., 33, 139 (1996)
Takada H, Watanabe Y, Iwamoto M, Chem. Lett., 33(1), 62 (2004)
Iwamoto M, Kitagawa H, Watanabe Y, Chem. Lett., 31(8), 814 (2002)
Lee SH, Lee BC, Lee KW, Choi YS, Park KY, Iwamoto M, in Wastewater reclamation & reuse for sustainability, IWA specialty conference, Jeju, South Korea (2005)
Wu P, Iwamoto M, Chem. Lett., 1213 (1998)
McMorn P, Hutchings GJ, Chem. Soc. Rev., 33, 108 (2004)
Ciesla U, Schacht S, Stucky GD, Unger KK, Schuth F, Angew. Chem.-Int. Edit., 35, 541 (1996)
Reddy JS, Sayari A, Catal. Lett., 38(3-4), 219 (1996)
Ertesvag H, Valla S, Polym. Degrad. Stabil., 59, 85 (1998)
Ho YS, McKay G, Water Res., 34, 735 (2000)
Mulder M, Basic principles of membrane technology, Kluwer Academic Publishers, Netherlands (1996)
Winston Ho WS, Sirkar KK, in Membrane handbook, V. Goel, M.A. Accomazzo, A. J. DiLeo, P. Meier, A. Pitt, M. Pluskal and R. Kaiser Eds., Van Nostrand Reinhold, New York (1992)
Kuzawa K, Jung YJ, Kiso Y, Yamada T, Nagai M, Lee TG, Chemosphere, 62, 45 (2006)

The Korean Institute of Chemical Engineers. F5, 119, Anam-ro, Seongbuk-gu, 233 Spring Street Seoul 02856, South Korea.
TEL. No. +82-2-458-3078FAX No. +82-507-804-0669E-mail : kiche@kiche.or.kr

Copyright (C) KICHE.all rights reserved.

- Korean Journal of Chemical Engineering 상단으로