Biodiesel from Camelina sativa: A comprehensive characterisation
Tài liệu tham khảo
Marchetti, 2005, Possible methods for biodiesel production, Renew Sustain Energ Rev, 11, 1300, 10.1016/j.rser.2005.08.006
Balat, 2011, Potential alternatives to edible oils for biodiesel production – A review of current work, Energ Convers Manage, 52, 1479, 10.1016/j.enconman.2010.10.011
Canakci, 2006, Performance and exhaust emissions of a biodiesel engine, Appl Energ, 83, 594, 10.1016/j.apenergy.2005.05.003
Wu, 2011, Optimization of biodiesel production from C. sativa oil using orthogonal experiment, Appl Energ, 88, 3615, 10.1016/j.apenergy.2011.04.041
Pinzi, 2009, The ideal vegetable oil-based biodiesel composition: a review of social, economical and technical implications, Energ Fuel, 23, 2325, 10.1021/ef801098a
Ramos, 2009, Influence of fatty acid composition of raw materials on biodiesel properties, Bioresource Technol, 100, 261, 10.1016/j.biortech.2008.06.039
Soriano, 2012, Evaluation of biodiesel derived from C. sativa oil, J Am Oil Chem Soc, 89, 917, 10.1007/s11746-011-1970-1
Canakci, 2008, Biodiesel production from various feedstocks and their effects on the fuel properties, J Ind Microbiol Biotech, 35, 431, 10.1007/s10295-008-0337-6
Pérez, 2010, Winterization of peanut biodiesel to improve the cold flow properties, Bioresource Technol, 101, 7375, 10.1016/j.biortech.2010.04.063
Durrett, 2008, Plant triacylglycerols as feedstocks for the production of biofuels, Plant J, 54, 593, 10.1111/j.1365-313X.2008.03442.x
Hoekman, 2012, Review of biodiesel composition, properties, and specifications, Renew Sustain Energ Rev, 16, 143, 10.1016/j.rser.2011.07.143
Viola, 2011, Graphical method to select vegetable oils as potential feedstock for biodiesel production, Eur J Lipid Sci Technol, 113, 1541, 10.1002/ejlt.201000559
Budin, 1995, Some compositional properties of C. sativa (C. sativa L. Crantz) seeds and oils, J Am Oil Chem Soc, 72, 309, 10.1007/BF02541088
Vollmann, 2001, Variation in resistance of Camelina (C. sativa [L.]Crtz. to downy mildew (Peronospora camelinae Gaum.), J Phytopathol, 149, 129, 10.1046/j.1439-0434.2001.00599.x
Moser, 2010, Evaluation of alkyl esters from C. sativa oil as biodiesel and as blend components in ultra low-sulfur diesel fuel, Bioresource Technol, 101, 646, 10.1016/j.biortech.2009.08.054
Brian, 2012, A life cycle assessment of biodiesel derived from the ‘‘niche filling’’ energy crop camelina in the USA, Appl Energ, 92, 92, 10.1016/j.apenergy.2011.10.025
Vollmann, 2007, Agronomic evaluation of C. sativa genotypes selected for seed quality characteristics, Ind Crop Prod, 26, 270, 10.1016/j.indcrop.2007.03.017
Hrastar, 2011, In situ quality evaluation of Camelina sativa landrace, Eur J Lipid Sci Technol, 1
Abramovič, 2005, Physico-chemical properties, composition and oxidative stability of C. sativa oil, Food Technol Biotech, 43, 63
Fröhlich, 2005, Evaluation of C. sativa oil as a feedstock for biodiesel production, Ind Crop Prod, 21, 25, 10.1016/j.indcrop.2003.12.004
Fernández, 2010, Production of biodiesel from winery waste: extraction, refining and transesterification of grape seed oil, Bioresource Technol, 101, 7019, 10.1016/j.biortech.2010.04.014
Casas, 2010, Effects of triacetin on biodiesel quality, Energ Fuel, 24, 4481, 10.1021/ef100406b
Carrero, 2012, Advances in biodiesel quality control, characterisation and standards developement, vol. 39, 131
Hrastar, 2009, Fatty acid and stable carbon isotope characterization of C. sativa oil: implications for authentication, J Agr Food Chem, 57, 579, 10.1021/jf8028144
Alptekin, 2009, Characterization of the key fuel properties of methyl ester–diesel fuel blends, Fuel, 88, 75, 10.1016/j.fuel.2008.05.023
Institute for Mobile System. Oil dilution of a passenger car diesel engine in operation with blended diesel fuel B10; 2009. <http://www.uofp.de/english_news.php> (accessed 7.06.12).
Wenzel, 1997, Boiling properties and thermal decomposition of vegetable oil methyl esters with regard to their fuel suitability, J Agr Food Chem, 45, 4748, 10.1021/jf970407w
Mittelbach M, Remschmidt C. Biodiesel – The comprehensive handbook. 3200002492nd ed; 2004.
Ramírez Verduzco, 2012, Predicting cetane number, kinematic viscosity, density and higher heating value of biodiesel from its fatty acid methyl ester composition, Fuel, 91, 102, 10.1016/j.fuel.2011.06.070
Knothe, 2005, Dependence of biodiesel fuel properties on the structure of fatty acid alkyl esters, Fuel Process Technol, 86, 1059, 10.1016/j.fuproc.2004.11.002
Monyem, 2001, The effect of biodiesel oxidation on engine performance and emissions, Biomass Bioenerg, 317, 10.1016/S0961-9534(00)00095-7
Knothe, 2003, Dependence of oil stability index of fatty compounds on their structure and concentration and presence of metals, JAOCS, 80, 1021, 10.1007/s11746-003-0814-x
Canakci, 1999, Accelerated oxidation processes in biodiesel, Trans ASAE, 6, 1565, 10.13031/2013.13321
Mittelbach, 1999, Long storage stability of biodiesel made from rapeseed and used frying oil, JAOCS, 545, 10.1007/s11746-999-0002-x
Moser, 2010, Camelina (C. sativa L.) oil as a biofuels feedstock: golden opportunity or false hope?, Lipid Technol, 22, 270, 10.1002/lite.201000068
Kang, 2011, Identification of three genes encoding microsomal oleate desaturases (FAD2) from the oilseed crop C. sativa, Plant Physiol Biochem, 49, 223, 10.1016/j.plaphy.2010.12.004
Leonard, 1998, C. sativa oil: α-linolenic source, Inform, 9, 830
Dubois, 2007, Fatty acid profiles of 80 vegetable oils with regard to, their nutritional potential, Eur J Lipid Sci Technol, 109, 710, 10.1002/ejlt.200700040
Yuan, 2005, Vapor pressure and normal boiling point predictions for pure methyl esters and biodiesel fuels, Fuel, 84, 943, 10.1016/j.fuel.2005.01.007