Cost structures and life cycle impacts of algal biomass and biofuel production
暂无分享,去创建一个
[1] D. Hamby. A review of techniques for parameter sensitivity analysis of environmental models , 1994, Environmental monitoring and assessment.
[2] Jianjun Liu,et al. Contribution of root respiration to soil respiration in a C3/C4 mixed grassland , 2005, Journal of Biosciences.
[3] D. D. Wolf,et al. Planting and managing switchgrass for forage, wildlife, and conservation , 2009 .
[4] M. Huntley,et al. CO2 Mitigation and Renewable Oil from Photosynthetic Microbes: A New Appraisal , 2007 .
[5] N. A. Kumar,et al. A Perspective on the Biotechnological Potential of Microalgae , 2008 .
[6] A. Mascarelli,et al. Gold rush for algae , 2009, Nature.
[7] Ana Cristina Oliveira,et al. Microalgae as a raw material for biofuels production , 2009, Journal of Industrial Microbiology & Biotechnology.
[8] Y. Chisti,et al. Recovery of microalgal biomass and metabolites: process options and economics. , 2003, Biotechnology advances.
[9] R. L. Hoskinson,et al. Engineering, nutrient removal, and feedstock conversion evaluations of four corn stover harvest scenarios , 2007 .
[10] K. L Kadam,et al. Environmental implications of power generation via coal-microalgae cofiring , 2002 .
[11] Patrick C. Hallenbeck,et al. Biological hydrogen production; fundamentals and limiting processes , 2002 .
[12] R. K. Dixon,et al. Mitigation and Adaptation Strategies for Global Change , 1998 .
[13] E. Sanhueza. Agroetanol ¿un combustible ambientalmente amigable? , 2009 .
[14] John Haldi,et al. Economies of Scale in Industrial Plants , 1967, Journal of Political Economy.
[15] W. Marion,et al. Solar radiation data manual for buildings , 1995 .
[16] Graziella Chini Zittelli,et al. Productivity and photosynthetic efficiency of outdoor cultures of Tetraselmis suecica in annular columns , 2006 .
[18] Elizabeth Pattey,et al. Instantaneous Measurement of Radiation and Water Use Efficiencies of a Maize Crop , 1996 .
[19] K. Cassman,et al. Nitrogen supply affects root:shoot ratio in corn and velvetleaf (Abutilon theophrasti ) , 2005, Weed Science.
[20] John R. Benemann,et al. Dunaliella salina (Chlorophyta) with small chlorophyll antenna sizes exhibit higher photosynthetic productivities and photon use efficiencies than normally pigmented cells , 1998, Journal of Applied Phycology.
[21] Chris Pal,et al. Integrating parametric uncertainty and modeling results into an advisory system for watershed management , 2001 .
[22] Maria J Barbosa,et al. Microalgal production--a close look at the economics. , 2011, Biotechnology advances.
[23] N. T. Eriksen. The technology of microalgal culturing , 2008, Biotechnology Letters.
[24] Francesco Cherubini,et al. LCA of a biorefinery concept producing bioethanol, bioenergy, and chemicals from switchgrass , 2010 .
[25] W Michael Griffin,et al. Impact of biofuel crop production on the formation of hypoxia in the Gulf of Mexico. , 2009, Environmental science & technology.
[26] Thomas H. Bradley,et al. Net energy and greenhouse gas emission evaluation of biodiesel derived from microalgae. , 2010, Environmental science & technology.
[27] Justus Wesseler,et al. Cost-effectiveness analysis of algae energy production in the EU , 2010 .
[28] Tristan R. Brown,et al. Biorenewable Resources: Engineering New Products from Agriculture , 2003 .
[29] Andrew J. McAloon,et al. Understanding the reductions in US corn ethanol production costs: an experience curve approach , 2009 .
[30] Edward J. Waller. Beyond Engineering: How Society Shapes Technology , 2004 .
[31] M. Eppink,et al. Microalgae for the production of bulk chemicals and biofuels , 2010 .
[32] Mahmoud M. El-Halwagi,et al. Design and analysis of biodiesel production from algae grown through carbon sequestration , 2010 .
[33] S. Polasky,et al. Environmental, economic, and energetic costs and benefits of biodiesel and ethanol biofuels. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[34] Chris Hendrickson,et al. Environmental Life Cycle Assessment of Goods and Services: An Input-Output Approach , 2006 .
[35] Charles A. S. Hall,et al. Year in review—EROI or energy return on (energy) invested , 2010, Annals of the New York Academy of Sciences.
[36] G. A. Peterson,et al. Measurement of Net Global Warming Potential in Three Agroecosystems , 2005, Nutrient Cycling in Agroecosystems.
[37] Stanley H. Cohen,et al. Design and Analysis , 2010 .
[38] S. Brouder,et al. Greenhouse gas fluxes in an eastern Corn Belt soil: weather, nitrogen source, and rotation. , 2009, Journal of environmental quality.
[39] A. Schirmer,et al. Microbial Biosynthesis of Alkanes , 2010, Science.
[40] Jing Liu,et al. The analysis on energy and environmental impacts of microalgae-based fuel methanol in China , 2009 .
[41] S. B. McLaughlin,et al. Evaluating physical, chemical, and energetic properties of perennial grasses as biofuels , 1996 .
[42] Z. Cohen,et al. Microbial and algal oils: Do they have a future for biodiesel or as commodity oils? , 2008 .
[43] A. Melis. Bioengineering of Green Algae to Enhance Photosynthesis and Hydrogen Production , 2006 .
[44] C. Howe,et al. Life-Cycle Assessment of Potential Algal Biodiesel Production in the United Kingdom: A Comparison of Raceways and Air-Lift Tubular Bioreactors , 2010 .
[45] L. Rodolfi,et al. Microalgae for oil: Strain selection, induction of lipid synthesis and outdoor mass cultivation in a low‐cost photobioreactor , 2009, Biotechnology and bioengineering.
[46] S. Harrison,et al. Lipid productivity as a key characteristic for choosing algal species for biodiesel production , 2009, Journal of Applied Phycology.
[47] Christopher W. Myers,et al. Understanding cost growth and performance shortfalls in pioneer process plants , 1981 .
[48] R. Lovitt,et al. Placing microalgae on the biofuels priority list: a review of the technological challenges , 2010, Journal of The Royal Society Interface.
[49] J. V. Beilen,et al. Why microalgal biofuels won't save the internal combustion machine , 2010 .
[50] M. Borowitzka. Commercial production of microalgae: ponds, tanks, tubes and fermenters , 1999 .
[51] Y. Chisti. Biodiesel from microalgae. , 2007, Biotechnology advances.
[52] P. Nobel,et al. Achievable productivities of certain CAM plants: basis for high values compared with C3 and C4 plants. , 1991, The New phytologist.
[53] Andrew D. Jones,et al. Supporting Online Material for: Ethanol Can Contribute To Energy and Environmental Goals , 2006 .
[54] Walter Mulbry,et al. Treatment of dairy and swine manure effluents using freshwater algae: fatty acid content and composition of algal biomass at different manure loading rates , 2008, Journal of Applied Phycology.
[55] Teresa M. Mata,et al. Microalgae for biodiesel production and other applications: A review , 2010 .
[56] Stephen P. Long,et al. Can perennial C4 grasses attain high efficiencies of radiant energy conversion in cool climates , 1995 .
[57] David Pimentel,et al. Food Versus Biofuels: Environmental and Economic Costs , 2009 .
[58] J. Benemann,et al. Look Back at the U.S. Department of Energy's Aquatic Species Program: Biodiesel from Algae; Close-Out Report , 1998 .
[59] Daniel T. Walters,et al. Maize Root Biomass and Net Rhizodeposited Carbon , 2006 .
[60] D. Glassner,et al. CORN STOVER COLLECTION PROJECT , 1998 .
[61] P. Spolaore,et al. Commercial applications of microalgae. , 2006, Journal of bioscience and bioengineering.
[62] Y. Watanabe,et al. Photosynthetic production of microalgal biomass in a raceway system under greenhouse conditions in Sendai city. , 2000, Journal of bioscience and bioengineering.
[63] Sharon L. Weyers,et al. Chemical Composition of Crop Biomass Impacts Its Decomposition , 2007 .
[64] Nicola Di Virgilio,et al. Mineral composition and ash content of six major energy crops. , 2008 .
[65] O. Warburg,et al. The maximum efficiency of photosynthesis. , 1950, Archives of biochemistry.
[66] MA Xiao-qian. Life cycle assessment on biodiesel production , 2007 .
[67] Albert S Bennett,et al. Production, transportation and milling costs of sweet sorghum as a feedstock for centralized bioethanol production in the upper Midwest. , 2009, Bioresource technology.
[68] C. R. Tischler,et al. Radiation use efficiency and leaf CO2 exchange for diverse C4 grasses. , 1999 .
[69] Kenneth J. Moore,et al. Biomass yield and quality of 20 switchgrass populations in southern Iowa, USA. , 2002 .
[70] Zhijian Pei,et al. Microalgae Mass Production Methods , 2009 .
[71] Brian J. Gallagher,et al. The economics of producing biodiesel from algae , 2011 .
[72] Jacinto F. Fabiosa,et al. Use of U.S. Croplands for Biofuels Increases Greenhouse Gases Through Emissions from Land-Use Change , 2008, Science.
[73] R. Omonode,et al. Soil carbon dioxide and methane fluxes from long-term tillage systems in continuous corn and corn–soybean rotations , 2007 .
[74] W. Oswald,et al. Systems and economic analysis of microalgae ponds for conversion of CO2 to biomass , 1994 .
[75] Navid Reza Moheimani,et al. The long-term culture of the coccolithophore Pleurochrysis carterae (Haptophyta) in outdoor raceway ponds , 2006, Journal of Applied Phycology.
[76] B. Leupen,et al. Design and analysis , 1997 .
[77] Christopher J. Kucharik,et al. Corn-based ethanol production compromises goal of reducing nitrogen export by the Mississippi River , 2008, Proceedings of the National Academy of Sciences.
[78] Seungdo Kim,et al. Life cycle assessment of corn grain and corn stover in the United States , 2009 .
[79] C. Hendrickson,et al. Using input-output analysis to estimate economy-wide discharges , 1995 .
[80] D. Batten,et al. Life cycle assessment of biodiesel production from microalgae in ponds. , 2011, Bioresource technology.
[81] R. Wijffels,et al. An Outlook on Microalgal Biofuels , 2010, Science.
[82] Michele Aresta,et al. Utilization of macro-algae for enhanced CO2 fixation and biofuels production: Development of a computing software for an LCA study , 2005 .
[83] Mark A. White,et al. Environmental life cycle comparison of algae to other bioenergy feedstocks. , 2010, Environmental science & technology.
[84] D. Rank,et al. Modelling temperature effects on growth–respiration relations of maize , 1998 .
[85] L. Laurens,et al. Microalgae as biodiesel & biomass feedstocks: Review & analysis of the biochemistry, energetics & economics , 2010 .
[86] G. Murthy,et al. Life cycle analysis of algae biodiesel , 2010 .
[87] A. Melis,et al. Solar energy conversion efficiencies in photosynthesis: Minimizing the chlorophyll antennae to maximize efficiency , 2009 .
[88] D. Walters,et al. Switchgrass biomass production in the Midwest USA: harvest and nitrogen management. , 2002 .
[89] Mark A. Liebig,et al. Biomass and carbon partitioning in switchgrass. , 2004 .
[90] O. Tokuşoglu,et al. Biomass Nutrient Profiles of Three Microalgae: Spirulina platensis, Chlorella vulgaris, and Isochrisis galbana , 2003 .
[91] L. Lardon,et al. Life-cycle assessment of biodiesel production from microalgae. , 2009, Environmental science & technology.
[92] Shahab Sokhansanj,et al. Variation in corn stover composition and energy content with crop maturity , 2005 .
[93] Devanand L. Luthria,et al. Optimization of an Oil Extraction Process for Algae from the Treatment of Manure Effluent , 2009 .
[94] Dominic C.Y. Foo,et al. Pinch analysis approach to carbon-constrained energy sector planning , 2007 .
[95] J. H. Van Gerpen,et al. The Energy Balance of Soybean Oil Biodiesel Production: A Review of Past Studies , 2008 .