Utilization of flue gas for cultivation of microalgae (Chlorella sp.) in an outdoor open thin-layer photobioreactor

被引:306
|
作者
Doucha, J [1 ]
Straka, F
Lívansky, K
机构
[1] Acad Sci Czech Republ, Inst Microbiol, Lab Cell Cycles & Microalgal Biotechnol, Trebon 37981, Czech Republic
[2] Fuel Res Inst, Prague 19011, Bechovice, Czech Republic
关键词
carbon dioxide; flue gas; microalgae; outdoor open photobioreactor; process analysis;
D O I
10.1007/s10811-005-8701-7
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
Flue gas generated by combustion of natural gas in a boiler was used for outdoor cultivation of Chlorella sp. in a 55 m(2) culture area photobioreactor. A 6 mm thick layer of algal suspension continuously running down the inclined lanes of the bioreactor at 50 cm s(-1) was exposed to sunlight. Flue gas containing 6-8% by volume of CO2 substituted for more costly pure CO2 as a source of carbon for autotrophic growth of algae. The degree of CO2 mitigation (flue gas decarbonization) in the algal suspension was 10-50% and decreased with increasing flue gas injection rate into the culture. A dissolved CO2 partial pressure (pCO(2)) higher than 0.1 kPa was maintained in the suspension at the end of the 50 m long culture area in order to prevent limitation of algal growth by CO2. NOX and CO gases (up to 45 mg m(-3) NOX and 3 mg m(-3) CO in flue gas) had no negative influence on the growth of the alga. On summer days the following daily net productivities of algae [g (dry weight) m(-2)] were attained in comparative parallel cultures: flue gas = 19.4-22.8; pure CO2 = 19.1-22.6. Net utilization (eta) of the photosynthetically active radiant (PAR) energy was: flue gas = 5.58-6.94%; pure CO2 = 5.49-6.88%. The mass balance of CO2 obtained for the flue gas stream and for the algal suspension was included in a mathematical model, which permitted the calculation of optimum flue gas injection rate into the photobioreactor, dependent on the time course of irradiance and culture temperature. It was estimated that about 50% of flue gas decarbonization can be attained in the photobioreactor and 4.4 kg of CO2 is needed for production of 1 kg (dry weight) algal biomass. A scheme of a combined process of farm unit size is proposed; this includes anaerobic digestion of organic agricultural wastes, production and combustion of biogas, and utilization of flue gas for production of microalgal biomass, which could be used in animal feeds. A preliminary quantitative assessment of the microalgae production is presented.
引用
收藏
页码:403 / 412
页数:10
相关论文
共 50 条
  • [31] Chlorella sp. Cultivation Using Parboiled Rice Effluent and Utilization of the Microalgae as Co-organic Fertilizer for Brinjal (Solanum melongina)
    Lithma Ruwangi Kariyawasam Hetti Gamage
    Nalina Gnanavelrajah
    Balachandran Ketheesan
    Kasthuri Kajeevan
    Waste and Biomass Valorization, 2023, 14 : 4243 - 4256
  • [32] Depth optimization of inclined thin layer photobioreactor for efficient microalgae cultivation in high turbidity digestate
    Chuka-ogwude, David
    Ogbonna, James C.
    Moheimani, Navid R.
    ALGAL RESEARCH-BIOMASS BIOFUELS AND BIOPRODUCTS, 2021, 60
  • [33] Kinetic model for effects of simulated flue gas onto growth profiles of Chlorella sp. AE10 and Chlorella sp. Cv
    Cheng, Dujia
    Li, Xuyang
    Yuan, Yizhong
    Zhao, Quanyu
    BIOTECHNOLOGY AND APPLIED BIOCHEMISTRY, 2020, 67 (05) : 783 - 789
  • [34] Adaptive evolution and carbon dioxide fixation of Chlorella sp. in simulated flue gas
    Cheng, Dujia
    Li, Xuyang
    Yuan, Yizhong
    Yang, Chengyu
    Tang, Tao
    Zhao, Quanyu
    Sun, Yuhan
    SCIENCE OF THE TOTAL ENVIRONMENT, 2019, 650 : 2931 - 2938
  • [35] Impact of photobioreactor design on microalgae-bacteria communities grown on wastewater: Differences between thin-layer cascade and thin-layer raceway ponds
    Clagnan, Elisa
    Dell'Orto, Marta
    Sterbova, Karolfna
    Grivalsky, Tomas
    Manoel, Joao Artur Camara
    Masojidek, Jiri
    D'Imporzanoa, Giuliana
    Gabriel Acien-Fernandez, Francisco
    Adani, Fabrizio
    BIORESOURCE TECHNOLOGY, 2023, 374
  • [36] Seawater supplemented with bicarbonate for efficient marine microalgae production in floating photobioreactor on ocean: A case study of Chlorella sp.
    Zhai, Xiaoqian
    Zhu, Chenba
    Zhang, Yongcheng
    Pang, Hao
    Kong, Fantao
    Wang, Jinghan
    Chi, Zhanyou
    SCIENCE OF THE TOTAL ENVIRONMENT, 2020, 738
  • [37] Outdoor cultivation of lutein-rich cells of Muriellopsis sp. in open ponds
    Antonio M. Blanco
    José Moreno
    José A. Del Campo
    Joaquín Rivas
    Miguel G. Guerrero
    Applied Microbiology and Biotechnology, 2007, 73 : 1259 - 1266
  • [38] Mixotrophic cultivation of oleaginous Chlorella sp. KR-1 mediated by actual coal-fired flue gas for biodiesel production
    Ramasamy Praveenkumar
    Bohwa Kim
    Eunji Choi
    Kyubock Lee
    Sunja Cho
    Ju-Soo Hyun
    Ji-Yeon Park
    Young-Chul Lee
    Hyun Uk Lee
    Jin-Suk Lee
    You-Kwan Oh
    Bioprocess and Biosystems Engineering, 2014, 37 : 2083 - 2094
  • [39] Effect of different cultivation conditions on the production of volatile organic compounds by the microalgae Arthrospira platensis and Chlorella sp.
    Nader, Camila
    Cella, Herculano
    Lopes, Rafael Garcia
    Oliveira, Carlos Yure B.
    D'Alessandro, Emmanuel Bezerra
    Antoniosi Filho, Nelson Roberto
    Derner, Roberto Bianchini
    JOURNAL OF APPLIED PHYCOLOGY, 2022, 34 (01) : 203 - 217
  • [40] Evaluation of the cultivation conditions of marine microalgae Chlorella sp. to be used as feedstock in ultrasound-assisted ethanolysis
    Amaral, Mateus S.
    Loures, Carla C.
    Da Ros, Patricia C. M.
    Machado, Sara A.
    Reis, Cristiano E. R.
    de Castro, Heizir F.
    Silva, Messias B.
    BIOFUEL RESEARCH JOURNAL-BRJ, 2015, 2 (03): : 288 - +