OPTIMIZING ALGAL BIOMASS PRODUCTION IN AN OUTDOOR POND - A SIMULATION-MODEL

被引:56
作者
SUKENIK, A
LEVY, RS
LEVY, Y
FALKOWSKI, PG
DUBINSKY, Z
机构
[1] BAR ILAN UNIV,DEPT LIFE SCI,IL-52100 RAMAT GAN,ISRAEL
[2] BROOKHAVEN NATL LAB,DEPT APPL SCI,UPTON,NY 11973
关键词
ALGAL MASS CULTURE; AREAL DENSITY; ISOCHRYSIS; PHOTOSYNTHESIS; PRODUCTIVITY; RESPIRATION; SIMULATION MODEL;
D O I
10.1007/BF00003577
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
A deterministic simulation model was developed to predict production rates of the marine prymnesiophyte Isochrysis galbana in an outdoor algal mass culture system. The model consists of photoadapation, gross photosynthesis and respiration sections. Actual physiological and biophysical laboratory data, obtained from steady state cultures grown under a wide range of irradiance levels, were used in calculating productivity. The resulting values were used to assess optimal operational parameters to maximize algal biomass production. The model predicted a yearly averaged production rate of 9.7 g C m-2d-1, which compared well with field data reported in the literature. The model evaluated the effect of pond depth and chlorophyll concentration on potential production rate in various seasons. The model predicted that a yearly averaged chlorophyll areal density of 0.65 g m-2 will yield the maximal production rate. Chlorophyll areal density should be seasonally adjusted to give maximal production. This adjustment could be done either by changing pond depth or chlorophyll concentration. The model predicted that under optimal operational conditions, the diurnal respiration losses averaged 35% of gross photosynthesis. The calculated growth rate for maximal productivity ranged between 0.15 and 0.24 d-1, suggesting an optimal hydraulic retention time of 6.7 and 4.2 d for various seasons.
引用
收藏
页码:191 / 201
页数:11
相关论文
共 25 条
[1]  
[Anonymous], 1980, BIOPHYSICAL ECOLOGY
[2]   OPERATION OF HIGH-RATE OXIDATION PONDS - THEORY AND EXPERIMENTS [J].
AZOV, Y ;
SHELEF, G .
WATER RESEARCH, 1982, 16 (07) :1153-1160
[3]  
Ben-Amatoz A, 1989, ALGAL CYANOBACTERIAL, P90
[4]   PHOTOADAPTATION AND THE PACKAGE EFFECT IN DUNALIELLA-TERTIOLECTA (CHLOROPHYCEAE) [J].
BERNER, T ;
DUBINSKY, Z ;
WYMAN, K ;
FALKOWSKI, PG .
JOURNAL OF PHYCOLOGY, 1989, 25 (01) :70-78
[5]  
Borowitzka M. A., 1988, MICROALGAL BIOTECHNO
[6]   OUTDOOR CULTIVATION OF THE MARINE MICROALGA ISOCHRYSIS-GALBANA IN OPEN REACTORS [J].
BOUSSIBA, S ;
SANDBANK, E ;
SHELEF, G ;
COHEN, Z ;
VONSHAK, A ;
BENAMOTZ, A ;
ARAD, S ;
RICHMOND, A .
AQUACULTURE, 1988, 72 (3-4) :247-253
[7]  
BURLEW JS, 1953, ALGAL CULTURE LABORA
[8]   MASS-CULTURE OF MICROALGAE IN AQUACULTURE SYSTEMS - PROGRESS AND CONSTRAINTS [J].
DEPAUW, N ;
MORALES, J ;
PERSOONE, G .
HYDROBIOLOGIA, 1984, 116 (SEP) :121-134
[9]   LIGHT HARVESTING AND UTILIZATION BY PHYTOPLANKTON [J].
DUBINSKY, Z ;
FALKOWSKI, PG ;
WYMAN, K .
PLANT AND CELL PHYSIOLOGY, 1986, 27 (07) :1335-1349
[10]  
Falkowski P.G., 1980, PRIMARY PRODUCTIVITY, P99, DOI DOI 10.1357/002224083788520199