Influences of molecular weight, molecular size, flux, and recovery for aromatic pesticide removal by nanofiltration membranes

被引:111
作者
Chen, SS
Taylor, JS
Mulford, LA
Norris, CD
机构
[1] Natl Taipei Univ Technol, Dept Civil Engn, Taipei 106, Taiwan
[2] Univ Cent Florida, Dept Civil & Environm Engn, Orlando, FL 32816 USA
关键词
aromatic pesticide; nanofiltration; molecular weight; molecular length and width; flux; recovery; diffusion control;
D O I
10.1016/S0011-9164(04)90000-8
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Eleven aromatic pesticides were used for a removal study using a 4040 spiral-wound polyamide nanofiltration (NF) membrane. The influences of molecular weight, molecular size (length and width), flux, and recovery were studied. The molecular weights of these pesticides are from 198 Da to 286 Da. Molecular sizes were determined by theoretical calculation for their length and width by "Hyperchem" based on their structures and orientation. Furthermore, the study held constant for two operated recoveries and fluxes to determine their effects. The results showed that the NF membrane can remove pesticides from 46% to 100% based on their molecular weights, lengths, fluxes and recoveries. The rejections were increased as the molecular weight increased, and a sharp increase to complete rejection (100%) was observed around MW 200 Da. Therefore, a molecular weight cut-off (MWC) of 200 Da can be determined for this membrane from this result. In addition, the results showed the molecular length was more significant than molecular width for these pesticides. The rejections were not only dependent on molecular weight and length, but also on operational flux and recovery. For a particular pesticide in the two operational fluxes and recoveries, the highest percent rejections occurred on high flux and low recovery, and lowest percent rejection occurred on low flux and high recovery, which would indicate the basic diffusion control theory.
引用
收藏
页码:103 / 111
页数:9
相关论文
共 17 条
[1]   Removal of pesticides and other micropollutants by nanofiltration [J].
Berg, P ;
Hagmeyer, G ;
Gimbel, R .
DESALINATION, 1997, 113 (2-3) :205-208
[2]   REMOVAL OF PESTICIDES BY REVERSE-OSMOSIS [J].
CHIAN, ESK ;
BRUCE, WN ;
FANG, HHP .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 1975, 9 (01) :52-59
[3]  
DURANCEAU SJ, 1992, J AM WATER WORKS ASS, V84, P68
[4]   REMOVAL OF ALCOHOLS, AMINES, AND ALIPHATIC-ACIDS IN AQUEOUS-SOLUTION BY NS-100 MEMBRANE [J].
FANG, HHP ;
CHIAN, ESK .
JOURNAL OF APPLIED POLYMER SCIENCE, 1975, 19 (05) :1347-1358
[5]   REVERSE-OSMOSIS SEPARATION OF POLAR ORGANIC COMPOUNDS IN AQUEOUS-SOLUTION [J].
FANG, HHP ;
CHIAN, ESK .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 1976, 10 (04) :364-369
[6]  
HINDIN E, 1969, Water and Sewage Works, V116, P466
[7]  
Hofman J.A. M.H., 1993, P AWWA MEMBR TECHN C
[8]   Removal of pesticides and other micropollutants with cellulose-acetate, polyamide and ultra-low pressure reverse osmosis membranes [J].
Hofman, JAMH ;
Beerendonk, EF ;
Folmer, HC ;
Kruithof, JC .
DESALINATION, 1997, 113 (2-3) :209-214
[9]   REVERSE OSMOSIS MEMBRANE SEPARATION TECHNIQUE FOR WATER POLLUTION CONTROL [J].
IRONSIDE, R ;
SOURIRAJAN, S .
WATER RESEARCH, 1967, 1 (02) :179-+
[10]   Rejection properties of pesticides with a hollow fiber NF membrane (HNF-1) [J].
Kiso, Y ;
Mizuno, A ;
Othman, RAAB ;
Jung, YJ ;
Kumano, A ;
Ariji, A .
DESALINATION, 2002, 143 (02) :147-157