MICROALGAE MASS PRODUCTION METHODS

被引:0
|
作者
Shen, Y. [1 ]
Yuan, W. [1 ]
Pei, Z. J. [2 ]
Wu, Q. [3 ]
Mao, E. [4 ]
机构
[1] Kansas State Univ, Dept Biol & Agr Engn, Manhattan, KS 66506 USA
[2] Kansas State Univ, Dept Ind & Mfg Syst Engn, Manhattan, KS 66506 USA
[3] Tsinghua Univ, Dept Biol Sci & Biotechnol, Beijing 100084, Peoples R China
[4] China Agr Univ, Coll Engn, Beijing 100094, Peoples R China
基金
美国国家科学基金会;
关键词
Algae; Biodiesel; Immobilized algae culture; Open pond; Photobioreactor; WASTE-WATER TREATMENT; NANNOCHLOROPSIS SP; COMMERCIAL PRODUCTION; ROTATING-DISKS; ALGAL BIOMASS; NOX EMISSIONS; BIODIESEL; CULTURE; PHOTOBIOREACTORS; ACID;
D O I
暂无
中图分类号
S2 [农业工程];
学科分类号
0828 ;
摘要
This article reviews the performance, special features, and technical and/or economic barriers of various microalgae mass production methods including open-pond, photobioreactor, and immobilized culture systems. Open ponds are the least expensive among the three systems; however, issues of vulnerable species contamination, low productivity, high harvesting cost, and large volume of water loss have to be addressed. High biomass productivity and cell density, reduced contamination, and better use of CO2 are some advantages of photobioteactor systems, but the prohibitively high construction cost of photobioreactors still limits commercialization of such systems. Immobilized algae culture systems have great potential to obviate the harvesting problem of open ponds and photobioreactors and enhance biomass productivity; however, high material cost and limited choices of algae species require more investigation. Economics of algae biofuel manufacturing arc, also discussed. Algae biomass productivity, lipid content, and petroleum price are decisive factors in the economic viability of algae biofuels.
引用
下载
收藏
页码:1275 / 1287
页数:13
相关论文
共 50 条
  • [21] Overcoming the Biological Contamination in Microalgae and Cyanobacteria Mass Cultivations for Photosynthetic Biofuel Production
    Zhu, Zhi
    Jiang, Jihong
    Fa, Yun
    MOLECULES, 2020, 25 (22):
  • [22] Aeration and mass transfer optimization in a rectangular airlift loop photobioreactor for the production of microalgae
    Guo, Xin
    Yao, Lishan
    Huang, Qingshan
    BIORESOURCE TECHNOLOGY, 2015, 190 : 189 - 195
  • [23] CELL FRAGILITY - THE KEY PROBLEM OF MICROALGAE MASS-PRODUCTION IN CLOSED PHOTOBIOREACTORS
    GUDIN, C
    CHAUMONT, D
    BIORESOURCE TECHNOLOGY, 1991, 38 (2-3) : 145 - 151
  • [24] Passive cell disruption lipid extraction methods of microalgae for biofuel production - A review
    Nagappan, Senthil
    Devendran, Saravanan
    Tsai, Pei-Chien
    Dinakaran, Selvapriya
    Dahms, Hans-Uwe
    Ponnusamy, Vinoth Kumar
    FUEL, 2019, 252 : 699 - 709
  • [25] MICROALGAE: BIOFUEL PRODUCTION
    Kumari, Babita
    Sharma, Vinay
    MODERN PHYTOMORPHOLOGY, 2013, 4 : 117 - 117
  • [26] Hydrogen production by microalgae
    Benemann, JR
    JOURNAL OF APPLIED PHYCOLOGY, 2000, 12 (3-5) : 291 - 300
  • [27] Microalgae for biofuel production
    Gilmour, D. James
    ADVANCES IN APPLIED MICROBIOLOGY, VOL 109, 2019, 109 : 1 - 30
  • [28] Photobioreactors for the production of microalgae
    Acien Fernandez, F. G.
    Fernandez Sevilla, J. M.
    Molina Grima, E.
    REVIEWS IN ENVIRONMENTAL SCIENCE AND BIO-TECHNOLOGY, 2013, 12 (02) : 131 - 151
  • [29] Photobioreactors for the production of microalgae
    F. G. Acién Fernández
    J. M. Fernández Sevilla
    E. Molina Grima
    Reviews in Environmental Science and Bio/Technology, 2013, 12 : 131 - 151
  • [30] Production of ketocarotenoids by microalgae
    P. Z. Margalith
    Applied Microbiology and Biotechnology, 1999, 51 : 431 - 438