Zirconium mesostructures immobilized in calcium alginate for phosphate removal

被引:46
作者
Yeon, Kyeong-Ho [1 ]
Park, Heesu [1 ]
Lee, Seung-Hak [1 ]
Park, Yong-Min [1 ]
Lee, Sang-Hyup [1 ]
Iwamoto, Masakazu [2 ]
机构
[1] Korea Inst Sci & Technol, Ctr Environm Technol Res, Seoul 130650, South Korea
[2] Tokyo Inst Technol, Chem Resources Lab, Midori Ku, Yokohama, Kanagawa 2268503, Japan
关键词
Zirconium Mesostructure; Phosphate; Adsorption; Regeneration;
D O I
10.1007/s11814-008-0170-7
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
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. Q(max) 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.
引用
收藏
页码:1040 / 1046
页数:7
相关论文
共 26 条
[1]   Nutrient removal and sludge production in the coagulation-flocculation process [J].
Aguilar, MI ;
Sáez, J ;
Lloréns, M ;
Soler, A ;
Ortuño, JF .
WATER RESEARCH, 2002, 36 (11) :2910-2919
[2]   Phosphorus removal by a synthetic iron oxide-gypsum compound [J].
Bastin, O ;
Janssens, F ;
Dufey, J ;
Peeters, A .
ECOLOGICAL ENGINEERING, 1999, 12 (3-4) :339-351
[3]   PHOSPHATE REMOVAL FROM SEA-WATER BY ADSORPTION ON VOLCANOGENIC FERRIC OXIDES [J].
BERNER, RA .
EARTH AND PLANETARY SCIENCE LETTERS, 1973, 18 (01) :77-86
[4]   Impact of excessive aeration on biological phosphorus removal from wastewater [J].
Brdjanovic, D ;
Slamet, A ;
van Loosdrecht, MCM ;
Hooijmans, CM ;
Alaerts, GJ ;
Heijnen, JJ .
WATER RESEARCH, 1998, 32 (01) :200-208
[5]   Formation of a porous zirconium oxo phosphate with a high surface area by a surfactant-assisted synthesis [J].
Ciesla, U ;
Schacht, S ;
Stucky, GD ;
Unger, KK ;
Schuth, F .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION IN ENGLISH, 1996, 35 (05) :541-543
[6]   PROTEIN EXTRACTIONS WITH HOLLOW FIBERS [J].
DAHURON, L ;
CUSSLER, EL .
AICHE JOURNAL, 1988, 34 (01) :130-136
[7]   Evaluation of chemical coagulation-flocculation aids for the removal of suspended solids and phosphorus from intensive recirculating aquaculture effluent discharge [J].
Ebeling, JM ;
Sibrell, PL ;
Ogden, SR ;
Summerfelt, ST .
AQUACULTURAL ENGINEERING, 2003, 29 (1-2) :23-42
[8]   Biosynthesis and applications of alginates [J].
Ertesvag, H ;
Valla, S .
POLYMER DEGRADATION AND STABILITY, 1998, 59 (1-3) :85-91
[9]   Removal of phosphorus from wastewater by activated alumina adsorbent [J].
Hano, T ;
Takanashi, H ;
Hirata, M ;
Urano, K ;
Eto, S .
WATER SCIENCE AND TECHNOLOGY, 1997, 35 (07) :39-46
[10]   Preparation of basic yttrium carbonate for phosphate removal [J].
Haron, MJ ;
Wasay, SA ;
Tokunaga, S .
WATER ENVIRONMENT RESEARCH, 1997, 69 (05) :1047-1051