PROMOTION OF OXYGEN-TRANSFER IN 3-PHASE FLUIDIZED-BED BIOREACTORS BY FLOATING BUBBLE BREAKERS

被引:30
作者
KANG, Y
FAN, LT
MIN, BT
KIM, SD
机构
[1] CHUNGNAM NATL UNIV, DEPT CHEM ENGN, TAEJON 302764, SOUTH KOREA
[2] KOREA INST SCI & TECHNOL, DEPT CHEM ENGN, SEOUL 136791, SOUTH KOREA
关键词
PROMOTION OF OXYGEN TRANSFER; 3-PHASE FLUIDIZED BEDS; BUBBLE BREAKER; VISCOUS LIQUID MEDIA;
D O I
10.1002/bit.260370613
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
The objective of the present study was to investigate a method to enhance the volumetric rate of oxygen transfer in three-phase fluidized-bed bioreactors. The rates of oxygen transfer from air bubbles to viscous liquid media were promoted by floating bubble breakers in three-phase fluidized beds operated in the bubble coalescing regime. The liquid-phase volumetric oxygen transfer coefficient has been recovered by fitting the axial dispersion model to the resultant data, and its dependence on the experimental variables, such as the gas and liquid flow rates, particle size, concentration of bubble breakers, and liquid viscosity, has been examined. The results indicate that the liquid-phase volumetric oxygen transfer coefficient can be enhanced up to 20-25%. The coefficient exhibits a maximum with respect to the volume ratio of the floating bubble breakers to the fluidized solid particles; it increases with increases in the gas and liquid flow rates and size of fluidized particles, while it decreases with an increase in the liquid viscosity. An expression has been developed to correlate the liquid-phase volumetric oxygen transfer coefficient with the experimental variables.
引用
收藏
页码:580 / 586
页数:7
相关论文
共 23 条
[1]   BIOLOGICAL PARTICLES OF GIVEN SIZE, SHAPE, AND DENSITY FOR USE IN BIOLOGICAL REACTORS [J].
ATKINSON, B ;
BLACK, GM ;
LEWIS, PJS ;
PINCHES, A .
BIOTECHNOLOGY AND BIOENGINEERING, 1979, 21 (02) :193-200
[2]   THE PRODUCTION OF THE ANTIBIOTIC PATULIN IN A 3 PHASE FLUIDIZED-BED REACTOR .1. EFFECT OF MEDIUM COMPOSITION [J].
BERK, D ;
BEHIE, LA ;
JONES, A ;
LESSER, BH ;
GAUCHER, GM .
CANADIAN JOURNAL OF CHEMICAL ENGINEERING, 1984, 62 (01) :112-119
[3]   MASS-TRANSFER IN 2-PHASE AND 3-PHASE FLUIDIZED-BEDS [J].
CHANG, SK ;
KANG, Y ;
KIM, SD .
JOURNAL OF CHEMICAL ENGINEERING OF JAPAN, 1986, 19 (06) :524-530
[4]  
DECKWER WD, 1974, CHEM ENG SCI, V29, P2177, DOI 10.1016/0009-2509(74)80025-4
[5]   APPLICABILITY OF AXIAL-DISPERSION MODEL TO ANALYZE MASS-TRANSFER MEASUREMENTS IN BUBBLE-COLUMNS [J].
DECKWER, WD ;
NGUYENTIEN, K ;
KELKAR, BG ;
SHAH, YT .
AICHE JOURNAL, 1983, 29 (06) :915-922
[6]   SIMULTANEOUS MEASUREMENT OF INTERFACIAL AREA AND MASS-TRANSFER COEFFICIENT IN 3-PHASE FLUIDIZED-BEDS [J].
DHANUKA, VR ;
STEPANEK, JB .
AICHE JOURNAL, 1980, 26 (06) :1029-1038
[7]   PHENOL DEGRADATION IN A 3-PHASE BIOFILM FLUIDIZED SAND BED REACTOR [J].
ETZENSPERGER, M ;
THOMA, S ;
PETROZZI, S ;
DUNN, IJ .
BIOPROCESS ENGINEERING, 1989, 4 (04) :175-181
[8]  
FAN LT, 1981, ADV BIOTECHNOL, V1, P643
[9]   CONTINUOUS PRODUCTION OF PENICILLIN-G BY PENICILLIUM-CHRYSOGENUM CELLS IMMOBILIZED ON CELITE BIOCATALYST SUPPORT PARTICLES [J].
JONES, A ;
WOOD, DN ;
RAZNIEWSKA, T ;
GAUCHER, GM ;
BEHIE, LA .
CANADIAN JOURNAL OF CHEMICAL ENGINEERING, 1986, 64 (04) :547-552
[10]  
KANG Y, 1990, 2ND P AS C FLUID BED, P299