Standing wave analysis of SMB chromatography: Linear systems

被引:209
作者
Ma, Z [1 ]
Wang, NHL [1 ]
机构
[1] PURDUE UNIV,SCH CHEM ENGN,W LAFAYETTE,IN 47907
关键词
D O I
10.1002/aic.690431012
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
The concept of standing concentration waves is introduced to derive design equations for continuous moving bed (CMB) processes. For linear isotherm systems simple equations are derived from the analysis to link product purity and recovery to zone lengths, bed movement velocity, flow rates, column capacity factors, and mass-transfer coefficients. Once product purity, recovery and feed flow rate are specified for a given system, the zone flow rates and bed movement velocity that provide the highest throughput and the lowest solvent consumption can be determined from the solutions. In a given system, there is a trade-off between product purity and throughput If bed volume and product purities are Feed, the longer the zone lengths, the higher the throughput. Simulations based on a linear driving force model that considers axial dispersion and lumped film and intraparticle diffusion are used to compare the column profiles and effluent histories of CMB and simulated moving bed (SMB). A numerical algorithm is introduced to allow simulation of both CMB and SMB operations using the same program. The comparison shows that the design equations derived for CMB systems are applicable to SMB systems Finally, the standing wave solutions are used to analyze an experimental SMB system from the literature (Ching et al, 1991). Simulations agree closely with the data and the predictions of the theoretical analysis.
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收藏
页码:2488 / 2508
页数:21
相关论文
共 43 条
[1]   SIMULATED MOVING-BED CHROMATOGRAPHY FOR CONTINUOUS SEPARATION OF 2 COMPONENTS AND ITS APPLICATION TO BIOREACTORS [J].
ADACHI, S .
JOURNAL OF CHROMATOGRAPHY A, 1994, 658 (02) :271-282
[2]  
BROUGHTON DB, 1970, CHEM ENG PROG, V66, P70
[3]  
BROUGHTON DB, 1968, CHEM ENG PROG, V64, P60
[4]   COMPLETE DESIGN OF A SIMULATED MOVING-BED [J].
CHARTON, F ;
NICOUD, RM .
JOURNAL OF CHROMATOGRAPHY A, 1995, 702 (1-2) :97-112
[5]   EXPERIMENTAL-STUDY OF A SIMULATED COUNTERCURRENT ADSORPTION SYSTEM .3. SORBEX OPERATION [J].
CHING, CB ;
RUTHVEN, DM ;
HIDAJAT, K .
CHEMICAL ENGINEERING SCIENCE, 1985, 40 (08) :1411-1417
[6]   COMPARATIVE-STUDY OF FLOW SCHEMES FOR A SIMULATED COUNTERCURRENT ADSORPTION SEPARATION PROCESS [J].
CHING, CB ;
CHU, KH ;
HIDAJAT, K ;
UDDIN, MS .
AICHE JOURNAL, 1992, 38 (11) :1744-1750
[7]   EXPERIMENTAL-STUDY OF A SIMULATED COUNTERCURRENT ADSORPTION SYSTEM .7. EFFECTS OF NONLINEAR AND INTERACTING ISOTHERMS [J].
CHING, CB ;
CHU, KH ;
HIDAJAT, K ;
RUTHVEN, DM .
CHEMICAL ENGINEERING SCIENCE, 1993, 48 (07) :1343-1351
[8]   AN EXPERIMENTAL-STUDY OF A SIMULATED COUNTERCURRENT ADSORPTION SYSTEM .1. ISOTHERMAL STEADY-STATE OPERATION [J].
CHING, CB ;
RUTHVEN, DM .
CHEMICAL ENGINEERING SCIENCE, 1985, 40 (06) :877-885
[9]   EXPERIMENTAL AND MODELING STUDIES ON THE TRANSIENT-BEHAVIOR OF A SIMULATED COUNTERCURRENT ADSORBER [J].
CHING, CB ;
CHU, KH ;
HIDAJAT, K ;
UDDIN, MS .
JOURNAL OF CHEMICAL ENGINEERING OF JAPAN, 1991, 24 (05) :614-621
[10]   SIMULATED COUNTERCURRENT ADSORPTION PROCESSES - A COMPARISON OF MODELING STRATEGIES [J].
CHU, KH ;
HASHIM, MA .
CHEMICAL ENGINEERING JOURNAL AND THE BIOCHEMICAL ENGINEERING JOURNAL, 1995, 56 (02) :59-65