The long-term culture of the coccolithophore Pleurochrysis carterae (Haptophyta) in outdoor raceway ponds
暂无分享,去创建一个
[1] J. Doucha,et al. Utilization of flue gas for cultivation of microalgae Chlorella sp.) in an outdoor open thin-layer photobioreactor , 2005, Journal of Applied Phycology.
[2] I. Probert,et al. Toxicity of coastal coccolithophores (Prymnesiophyceae, Haptophyta) , 2004 .
[3] J. Rivas,et al. Outdoor cultivation of a nitrogen-fixing marine cyanobacterium, Anabaena sp. ATCC 33047. , 2003, Biomolecular engineering.
[4] K. L. Alstyne,et al. Dimethylsulfide Release during Macroinvertebrate Grazing and Its Role as an Activated Chemical Defense , 2003 .
[5] Carlos Jiménez,et al. The Feasibility of industrial production of Spirulina (Arthrospira) in Southern Spain , 2003 .
[6] E. Olguín,et al. Annual productivity of Spirulina (Arthrospira) and nutrient removal in a pig wastewater recycling process under tropical conditions , 2003, Journal of Applied Phycology.
[7] A. Prieto,et al. Conditions for open-air outdoor culture of Dunaliella salina in southern Spain , 2003, Journal of Applied Phycology.
[8] G. Wolfe,et al. DIMETHYLSULFONIOPROPIONATE CLEAVAGE BY MARINE PHYTOPLANKTON IN RESPONSE TO MECHANICAL, CHEMICAL, OR DARK STRESS1 , 2002 .
[9] D. Schroeder,et al. Coccolithovirus (Phycodnaviridae): Characterisation of a new large dsDNA algal virus that infects Emiliana huxleyi , 2002, Archives of Virology.
[10] K. M. Reifel,et al. Pleurochrysis pseudoroscoffensis (Prymnesiophyceae) blooms on the surface of the Salton Sea, California , 2001, Hydrobiologia.
[11] L. Sverdrup,et al. Comparative toxicity of acrylic acid to marine and freshwater microalgae and the significance for environmental effects assessments. , 2001, Chemosphere.
[12] G. Wolfe. The chemical defense ecology of marine unicellular plankton: constraints, mechanisms, and impacts. , 2000, The Biological bulletin.
[13] E. Paasche. Reduced coccolith calcite production under light-limited growth: a comparative study of three clones of Emiliania huxleyi (Prymnesiophyceae) , 1999 .
[14] Z. Cohen,et al. Chemicals from Microalgae , 1999 .
[15] M. Borowitzka. Commercial production of microalgae: ponds, tanks, tubes and fermenters , 1999 .
[16] Junbiao Dai,et al. A renewable energy source — hydrocarbon gases resulting from pyrolysis of the marine nanoplanktonic alga Emiliania huxleyi , 1999, Journal of Applied Phycology.
[17] J. Benemann,et al. Look Back at the U.S. Department of Energy's Aquatic Species Program: Biodiesel from Algae; Close-Out Report , 1998 .
[18] G. Malin,et al. ALGAL PRODUCTION OF DIMETHYL SULFIDE AND ITS ATMOSPHERIC ROLE 1 , 1997 .
[19] Yuan-Kun Lee,et al. Determination of biomass dry weight of marine microalgae , 1997, Journal of Applied Phycology.
[20] A. Vonshak,et al. Spirulina Platensis Arthrospira : Physiology, Cell-Biology And Biotechnology , 1997 .
[21] Mario R. Tredici,et al. As integrated culture system for outdoor production of microalgae and cyanobacteria , 1997, Journal of Applied Phycology.
[22] Y. Yun,et al. Enhancement of CO2 tolerance of Chlorella vulgaris by gradual increase of CO2 concentration. , 1996 .
[23] Y. Matsuda,et al. A New Screening Method for Algal Photosynthetic Mutants (CO2-Insensitive Mutants of the Green Alga Chlorella ellipsoidea) , 1996, Plant physiology.
[24] S. Miyachi,et al. Photosynthetic Characteristics of Three Strains of Cyanobacteria Grown under Low-or High-C02 Conditions , 1996 .
[25] M. Kawachi,et al. Functional roles of the haptonema and the spine scales in the feeding process of Chrysochromulina spinifera (Fournier) Pienaar et Norris (Haptophyta = Prymnesiophyta) , 1995 .
[26] W. Balch,et al. High-Rates Of Lipid Biosynthesis In Cultured Mesocosm And Coastal Populations Of The Coccolithophore Emiliania-Huxleyi , 1994 .
[27] M. Kishimoto,et al. CO_2 fixation and oil production by using microalgae , 1993 .
[28] A. Richmond,et al. Open systems for the mass production of photoautotrophic microalgae outdoors: physiological principles , 1992, Journal of Applied Phycology.
[29] A. Richmond,et al. Quantitative assessment of the major limitations on productivity ofSpirulina platensis in open raceways , 1990, Journal of Applied Phycology.
[30] Nick Nagle,et al. Production of methyl ester fuel from microalgae , 1990 .
[31] E. Laws,et al. A simple algal production system designed to utilize the flashing light effect , 1983, Biotechnology and bioengineering.
[32] G. Eglinton,et al. Sterol and fatty acid composition of four marine haptophycean algae , 1981, Journal of the Marine Biological Association of the United Kingdom.
[33] M. Kates,et al. Lipid components of diatoms. , 1966, Biochimica et biophysica acta.
[34] R. Guillard,et al. Studies of marine planktonic diatoms. I. Cyclotella nana Hustedt, and Detonula confervacea (cleve) Gran. , 1962, Canadian journal of microbiology.
[35] J. M. Sieburth. Acrylic Acid, an "Antibiotic" Principle in Phaeocystis Blooms in Antarctic Waters , 1960, Science.
[36] T. Tyrrell,et al. Emiliania huxleyi: bloom observations and the conditions that induce them , 2004 .
[37] M. Steinke,et al. Dimethyl sulfide production: what is the contribution of the coccolithophores? , 2004 .
[38] J. Young,et al. Coccolithophores : from molecular processes to global impact , 2004 .
[39] M. Borowitzka. Economic evaluation of microalgal processes and products , 1999 .
[40] A. Belay. Mass culture of Spirulina outdoors--the earthrise farms experience , 1997 .
[41] M. Kishimoto,et al. CO2 fixation and oil production using micro-algae [Dunaliella tertiolecta]. , 1994 .
[42] B. Leadbeater,et al. The Haptophyte algae , 1994 .
[43] T. I. Mercz. A study of high lipid yielding microalgae with potential for large-scale production of lipids and polyunsaturated fatty acids , 1994 .
[44] A. Richmond,et al. Mass production of the blue-green alga Spirulina: An overview , 1988 .
[45] Michael A. Borowitzka,et al. Micro-algal biotechnology. , 1988 .
[46] T. Kanazawa,et al. MASS CULTURE OF UNICELLULAR ALGAE USING THE "OPEN CIRCULATION METHOD" , 1958 .