DETERMINATION OF PORE-SIZE AND PORE-SIZE DISTRIBUTION .39 FILTRATION MEMBRANES

被引:222
作者
NAKAO, S
机构
[1] Department of Chemical Engineering, The University of Tokyo, Bunkyo-ku, Tokyo, 113
关键词
STRUCTURE CHARACTERIZATION OF MEMBRANES; PORE SIZE; PORE SIZE DISTRIBUTION; MICROFILTRATION MEMBRANES; ULTRA FILTRATION MEMBRANES;
D O I
10.1016/0376-7388(94)00128-6
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Porous filtration membranes such as microfiltration and ultrafiltration membranes have been widely applied in various industries. Recently nanofiltration membranes have been commercialized. Characterization of the membrane pore structure, such as pore radius, pore density, pore shape, pore length, tortuosity, and so on, becomes more and more important and characterization methods must be established. Various methods to characterize the pore structure of porous membranes will be reviewed. Firstly, the microscopy observation method which is the most direct method to characterize the membrane pore structure is reviewed. Atomic force microscopy recently developed has been applied for the membrane observation. Secondly, methods based on bubble pressure and gas transport will be reviewed. This method can measure the pore size distribution of a membrane under wet conditions. The third method is thermoporometry. The temperature of liquid solidification and/or solid melting is lower in smaller pores and thus by measuring the freezing and/or melting thermo-diagram, the pore size and its distribution can be determined in wet environments. These three methods are not directly related with the solute or particle permeation performance which is the most important characteristics of separation membranes. Therefore the final method reviewed will be the characterization based on molecular transport through a membrane. Various transport models have been developed and they can be used for the characterization. The models and structural analysis by using the models will be explained.
引用
收藏
页码:131 / 165
页数:35
相关论文
共 77 条
[1]   SOME COMMENTS ON THE APPLICABILITY OF GAS PERMEATION METHODS TO CHARACTERIZE POROUS MEMBRANES BASED ON IMPROVED EXPERIMENTAL ACCURACY AND DATA HANDLING [J].
ALTENA, FW ;
KNOEF, HAM ;
HESKAMP, H ;
BARGEMAN, D ;
SMOLDERS, CA .
JOURNAL OF MEMBRANE SCIENCE, 1983, 12 (03) :313-322
[2]   RESTRICTED TRANSPORT IN SMALL PORES - MODEL FOR STERIC EXCLUSION AND HINDERED PARTICLE MOTION [J].
ANDERSON, JL ;
QUINN, JA .
BIOPHYSICAL JOURNAL, 1974, 14 (02) :130-150
[3]  
Bean C P, 1972, Membranes, V1, P1
[4]   HINDERED DIFFUSION IN MICROPOROUS MEMBRANES WITH KNOW PORE GEOMETRY [J].
BECK, RE ;
SCHULTZ, JS .
SCIENCE, 1970, 170 (3964) :1302-&
[5]  
Blatt WF, 1970, MEMBRANE SCI TECHNOL, P47
[6]  
BOHLIN T, 1960, T R I TECHNOL STOCKH, V155
[7]   HINDERED DIFFUSION OF DEXTRAN AND FICOLL IN MICROPOROUS MEMBRANES [J].
BOHRER, MP ;
PATTERSON, GD ;
CARROLL, PJ .
MACROMOLECULES, 1984, 17 (06) :1170-1173
[8]   CONSTRAINED BROWNIAN-MOVEMENT OF SPHERICAL-PARTICLES IN CYLINDRICAL PORES OF COMPARABLE RADIUS - MODELS OF DIFFUSIVE AND CONVECTIVE TRANSPORT OF SOLUTE MOLECULES IN MEMBRANES AND POROUS-MEDIA [J].
BRENNER, H ;
GAYDOS, LJ .
JOURNAL OF COLLOID AND INTERFACE SCIENCE, 1977, 58 (02) :312-356
[9]   NEW METHOD FOR SIMULTANEOUS DETERMINATION OF SIZE AND SHAPE OF PORES - THERMOPOROMETRY [J].
BRUN, M ;
LALLEMAND, A ;
QUINSON, JF ;
EYRAUD, C .
THERMOCHIMICA ACTA, 1977, 21 (01) :59-88
[10]  
Bungay PM, 1973, INT J MULTIPHAS FLOW, V1, P25, DOI DOI 10.1016/0301-9322(73)90003-7