Concentration of clavulanic acid broths: Influence of the membrane surface charge density on NF operation

被引:48
作者
Cavaco Morao, Ana I. [1 ]
Brites Alves, Ana M. [1 ]
Dina Afonso, Maria [1 ]
机构
[1] Univ Tecn Lisboa, Dept Chem & Biol Engn, Inst Super Tecn, P-1049001 Lisbon, Portugal
关键词
nanofiltration; zeta potential; fermentation broths; adsorption; membrane surface charge density;
D O I
10.1016/j.memsci.2006.04.010
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Aiming the optimisation of nanofiltration (NF) for the concentration of ultrafiltration (UF) permeates from industrial fermentation broths, concerning clavulanic acid yield and permeation flux, the present work focused on the study of the electrokinetic properties of membranes in order to get insight of the mechanisms underlying the NF process. Streaming potential determinations showed that the membranes tested (NFT50, Desal DK and Desal DL) were negatively charged at pH 4.5-5.0, which is the actual pH of NF feed. Nevertheless, the isoelectric point (IEP) varied significantly with the electrolyte type, ionic strength and membrane pre-treatment revealing the importance of these variables upon the membranes electrokinetic properties. The increase of membranes surface charge density for increasing concentration of salts (KC], K2SO4, potassium clavulanate and MgSO4) was correlated by Freundlich adsorption isotherms. The role of sieving exclusion in the NF process was demonstrated for potassium clavulanate whereas electrostatic exclusion was the dominant mechanism for KCl. Adsorption of negatively charged species contained in UF permeates from fermentation broths increases the membranes surface charge density, although their JEP remain constant. (c) 2006 Elsevier B.V. All rights reserved.
引用
收藏
页码:417 / 428
页数:12
相关论文
共 47 条
[11]   Modelling the performance of membrane nanofiltration - application to an industrially relevant separation [J].
Bowen, WR ;
Cassey, B ;
Jones, P ;
Oatley, DL .
JOURNAL OF MEMBRANE SCIENCE, 2004, 242 (1-2) :211-220
[12]   Electrokinetic effects in membrane pores and the determination of zeta-potential [J].
Bowen, WR ;
Cao, XW .
JOURNAL OF MEMBRANE SCIENCE, 1998, 140 (02) :267-273
[13]   Examining the electrochemical properties of a nanofiltration membrane with atomic force microscopy [J].
Brant, JA ;
Johnson, KM ;
Childress, AE .
JOURNAL OF MEMBRANE SCIENCE, 2006, 276 (1-2) :286-294
[14]   Purification of heterocyclic drug derivatives from concentrated saline solution by nanofiltration [J].
Capelle, N ;
Moulin, P ;
Charbit, F ;
Gallo, R .
JOURNAL OF MEMBRANE SCIENCE, 2002, 196 (01) :125-141
[15]   Effect of solution chemistry on the surface charge of polymeric reverse osmosis and nanofiltration membranes [J].
Childress, AE ;
Elimelech, M .
JOURNAL OF MEMBRANE SCIENCE, 1996, 119 (02) :253-268
[16]   Zeta potential of commercial RO membranes: influence of source water type and chemistry [J].
Deshmukh, SS ;
Childress, AE .
DESALINATION, 2001, 140 (01) :87-95
[17]   MEASURING THE ZETA (ELECTROKINETIC) POTENTIAL OF REVERSE-OSMOSIS MEMBRANES BY A STREAMING POTENTIAL ANALYZER [J].
ELIMELECH, M ;
CHEN, WH ;
WAYPA, JJ .
DESALINATION, 1994, 95 (03) :269-286
[18]   Determining the ζ-potential of plane membranes from tangential streaming potential measurements:: effect of the membrane body conductance [J].
Fievet, P ;
Sbaï, M ;
Szymczyk, A ;
Vidonne, A .
JOURNAL OF MEMBRANE SCIENCE, 2003, 226 (1-2) :227-236
[19]   Separation of concentrated organic/inorganic salt mixtures by nanofiltration [J].
Freger, V ;
Arnot, TC ;
Howell, JA .
JOURNAL OF MEMBRANE SCIENCE, 2000, 178 (1-2) :185-193
[20]   Modelling the salt rejection of nanofiltration membranes for ternary ion mixtures and for single salts at different pH values [J].
Hagmeyer, G ;
Gimbel, R .
DESALINATION, 1998, 117 (1-3) :247-256