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中国生物工程杂志

China Biotechnology
China Biotechnology  2015, Vol. 35 Issue (11): 99-104    DOI: 10.13523/j.cb.20151114
    
Research of Chlorella on the Production of Biodiesel
YANG Kai, ZHAN Jing-ming, GAO Fen-fang, WU Bao-li, SU Li-xia, ZHOU Wen-ming, XUE Xiang-ming, HAO Jie, ZHAO Yang
China Institute for Radation Protection, Taiyuan 030006, China
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Abstract  

Objective: The recent progress in research of Chlorella on the production of diodiesel is introduced as a review. Methods: The domestic and international articles on the biodiesel production from chlorella were reviewed and summarized. Results: Microalgae biodiesel is one of the most promising biodiesel. Chiorella is an attractive microalgae spicies for biodiesel production. As its high quality for biodiesel, Chlorella has outstanding advantages compared with other biodiesel raw materials. With the development of engineering technology and the relevant research, Obtaining lipids with both high-quality and large quantity by exploring the appropriate chlorella culture methods will be futfilled in the near future. Conclusion: Chlorella has a widely promising future in the production of diodiesel.



Key wordsBiodiesel      Microalgae      Chlorella      Biomass      Lipid     
Received: 27 April 2015      Published: 25 November 2015
ZTFLH:  Q819  
Cite this article:

YANG Kai, ZHAN Jing-ming, GAO Fen-fang, WU Bao-li, SU Li-xia, ZHOU Wen-ming, XUE Xiang-ming, HAO Jie, ZHAO Yang. Research of Chlorella on the Production of Biodiesel. China Biotechnology, 2015, 35(11): 99-104.

URL:

https://manu60.magtech.com.cn/biotech/10.13523/j.cb.20151114     OR     https://manu60.magtech.com.cn/biotech/Y2015/V35/I11/99

[1] Nabi M N, Rahman M M, Akhter M S. Biodiesel from cotton seed oil and its effect on engine performance and exhaust emissions. Applied Thermal Engineering, 2009, 29(11–12): 2265-2270.
[2] Patil P D, Deng S. Optimization of biodiesel production from edible and non-edible vegetable oils. Fuel, 2009, 88(7): 1302-1306.
[3] Chisti Y. Biodiesel from microalgae. Biotechnol Adv, 2007, 25(3): 294-306.
[4] Demirbas A. Importance of biodiesel as transportation fuel. Energy Policy, 2007, 35(9): 4661-4670.
[5] Balat M, Balat H. Progress in biodiesel processing. Applied Energy, 2010, 87(6): 1815-1835.
[6] Demirbas A, Demirbas M F. Importance of algae oil as a source of biodiesel. Energy Conversion and Management, 2011, 52(1): 163-170.
[7] Widjaja A, Chien C, Ju Y. Study of increasing lipid production from fresh water microalgae Chlorella vulgaris. Journal of the Taiwan Institute of Chemical Engineers, 2009, 40(1): 13-20.
[8] Mata T M, Martins A A, Caetano N S. Microalgae for biodiesel production and other applications: a review. Renewable and Sustainable Energy Reviews, 2010, 14(1): 217-232.
[9] Converti A, Casazza A A, Ortiz E Y, et al. Effect of temperature and nitrogen concentration on the growth and lipid content of Nannochloropsis oculata and Chlorella vulgaris for biodiesel production.Chemical Engineering and Processing: Process Intensification, 2009, 48(6): 1146-1151.
[10] Haik Y, Selim M Y E, Abdulrehman T. Combustion of algae oil methyl ester in an indirect injection diesel engine. Energy, 2011, 36(3): 1827-1835.
[11] Huang G, Chen F, Wei D, et al. Biodiesel production by microalgal biotechnology. Applied Energy, 2010, 87(1): 38-46.
[12] Miao X, Wu Q. Biodiesel production from heterotrophic microalgal oil.Bioresour Technol, 2006 ,97(6):841-846.
[13] Brennan L, Owende P. Biofuels from microalgae—a review of technologies for production, processing, and extractions of biofuels and co-products. Renewable and Sustainable Energy Reviews, 2010, 14(2): 557-577.
[14] Gouveia L, Oliveira A C. Microalgae as a raw material for biofuels production. Journal of Industrial Microbiology & Biotechnology, 2009, 36(2): 269-274.
[15] 梅帅,赵凤敏,曹有福,等. 三种小球藻生物柴油品质指标评价.农业工程学报,2013,29(15):229-235. Mei S, Zhao F M, Cao Y F, et al. Evaluation of quality items for biodiesel made from three kinds of chlorella vulgaris. Transactions of the Chinese Society of Agricultural Engineering, 2013, 29(15):229-235.
[16] Song D, Fu J, Shi D. Exploitation of oil-bearing microalgae for biodiesel. Chinese Journal of Biotechnology, 2008, 24(3): 341-348.
[17] Miao X, Wu Q. High yield bio-oil production from fast pyrolysis by metabolic controlling of Chlorella protothecoides. Journal of Biotechnology, 2004, 110(1): 85-93.
[18] Garcia M C, Camacho F, Miron A, et al. Mixotrophic production of marine microalga Phaeodactylum tricornutum on various carbon sources. Journal of Microbiology & Biotechnology, 2006, 16(5):689-694.
[19] Wan M, Liu P, Xia J, et al. The effect of mixotrophy on microalgal growth, lipid content, and expression levels of three pathway genes in Chlorella sorokiniana. Appl Microbiol Biotechnol, 2011, 91(3): 835-844.
[20] Liang Y, Sarkany N, Cui Y. Biomass and lipid productivities of Chlorella vulgaris under autotrophic, heterotrophic and mixotrophic growth conditions. Biotechnol Lett, 2009, 31(7): 1043-1049.
[21] Rodolfi L, Chini Zittelli G, Bassi N, et al. Microalgae for oil: strain selection, induction of lipid synthesis and outdoor mass cultivation in a low-cost photobioreactor. Biotechnology & Bioengineering, 2009, 102(1):100-112.
[22] Breuer G, Lamers P P, Martens D E, et al. The impact of nitrogen starvation on the dynamics of triacylglycerol accumulation in nine microalgae strains. Bioresour Technol, 2012, 124(337): 217-226.
[23] Belotti G, Bravi M, Caprariis B D, et al. Effect of nitrogen and phosphorus starvations on Chlorella vulgaris lipids productivity and quality under different trophic regimens for biodiesel production. American Journal of Plant Sciences, 2013, (12):44-51.
[24] Xia J X, Gong S G, Jin X J, et al. Effects of simulated flue gases on growth and lipid production of Chlorella sorokiniana CS-01. Journal of Central South University, 2013, 20(3): 730-736.
[25] Bligh E G, Dyer W J. A rapid method of total lipid extraction and purification. Can J Biochem Physiol, 1959, 37(8): 911-917.
[26] Demirbas A. Production of biodiesel from algae oils. Energy Sources, Part A:Recovery, Utilization, and Environmental Effects, 2008, 31(2):163-168.
[27] Demirbas A, Demirbas M F. Importance of algae oil as a source of biodiesel. Energy Conversion and Management, 2011, 52(1): 163-170.
[28] Kim Y H, Choi Y K, Park J, et al. Ionic liquid-mediated extraction of lipids from algal biomass. Bioresour Technol, 2012, 109(4): 312-315.
[29] Pernet F, Tremblay R. Effect of ultrasonication and grinding on the determination of lipid class content of microalgae harvested on filters. Lipids, 2003, 38 (11): 1191-1195.
[30] Lee C G, Kang D H, Lee D B, et al. Pretreatment for simultaneous production of total lipids and fermentable sugars from marine alga, Chlorella sp. Applied Biochemistry & Biotechnology, 2013, 171(5):1143-1158.
[31] Kim Y, Park S, Kim M H, et al. Ultrasound-assisted extraction of lipids from Chlorella vulgaris using . Biomass and Bioenergy, 2013, 56(5): 99-103.
[32] Jothiramalingam R, Wang M K. Review of recent developments in solid acid, base, and enzyme catalysts (heterogeneous) for biodiesel production via transesterification. Ind Eng Chem Res, 2009, 48(13):6162-6172.
[33] Fjerbaek L, Christensen K V, Norddahl B. A review of the current state of biodiesel products using enzymatic transesterification. Biotechnology and Bioengineering, 2009, 102(5):1298-1315.
[34] Mathimani T, Uma L, Prabaharan D. Homogeneous acid catalysed transesterification of marine microalga Chlorella sp. BDUG 91771 lipid-An efficient biodiesel yield and its characterization. Renewable Energy, 2015,81(9): 523-533.
[35] Patil P D, Gude V G, Mannarswamy A, et al. Optimization of direct conversion of wet algae to biodiesel under supercritical methanol conditions. Bioresource Technology, 2011, 102(1):118-122.
[36] Wahlen B D, Willis R M, Seefeldt L C. Biodiesel production by simultaneous extraction and conversion of total lipids from microalgae, cyanobacteria, and wild mixed-cultures. Bioresource Technology, 2011, 102(3):2724-2730.
[37] Tran D T, Chen C L, Chang J S. Immobilization of Burkholderia sp. lipase on a ferric silica nanocomposite for biodiesel production. Journal of Biotechnology, 2012, 158(3):112-119.
[38] Tran D T, Yeh K L, Chen C L, et al. Enzymatic transesterification of microalgal oil from Chlorella vulgaris ESP-31 for biodiesel synthesis using immobilized Burkholderia lipase. Bioresource Technology, 2012, 108(3):119-127.
[39] Francisco E C, Neves D B, Franco T T. Microalgae as feedstock for biodiesel production: carbon dioxide sequestration, lipid production and biofuel quality. Journal of Chemical Technology and Biotechnology, 2010, 85(3): 395-403.
[40] Shekh A Y, Shrivastava P, Krishnamurthi K, et al. Stress-induced lipids are unsuitable as a direct biodiesel feedstock: a case study with Chlorella pyrenoidosa. Bioresour Technol, 2013, 138(2): 382-386.
[41] Ryu B, Kim E J, Kim H, et al. Simultaneous treatment of municipal wastewater and biodiesel production by cultivation of Chlorella vulgaris with indigenous wastewater bacteria. Biotechnology & Bioprocess Engineering, 2014, 19(2):201-210.
[42] Farooq W, Lee Y C, Ryu B G, et al. Two-stage cultivation of two Chlorella sp. strains by simultaneous treatment of brewery wastewater and maximizing lipid productivity. Bioresour Technol, 2013, 132(1): 230-238.
[43] De-Bashan L E, Bashan Y, Moreno M, et al. Increased pigment and lipid content, lipid variety, and cell and population size of the microalgae Chlorella spp. when co-immobilized in alginate beads with the microalgae-growth-promoting bacterium Azospirillum brasilense. Canadian Journal of Microbiology, 2002, 48(6):514-521(8).
[44] Cheirsilp B, Suwannarat W, Niyomdecha R. Mixed culture of oleaginous yeast Rhodotorula glutinis and microalga Chlorella vulgaris for lipid production from industrial wastes and its use as biodiesel feedstock. N Biotechnol, 2011, 28(4): 362-368.
[45] Xue F Y, Miao J X, Zhang X, et al. A new strategy for lipid production by mix cultivation of Spirulina platensis and Rhodotorula glutinis. Appl Biochem Biotechnol, 2010, 160(2): 498-503.
[46] Zhao P, Yu X, Li J, et al. Enhancing lipid productivity by co-cultivation of Chlorella sp. U4341 and Monoraphidium sp. FXY-10. Journal of Bioscience and Bioengineering, 2014, 118(1): 72-77.

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