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Raw Materials to Produce Low-Cost Biodiesel  145


           127. D. S. Kimber and D. I. McGregor. The species and their origin, cultivation and world
               production, In: Brassica Oilseeds: Production and Utilization, Wallingford, UK: C.
               International, pp. 1–7, 1995.
           128. N. J. Mendham and P. A. Salisbury. Physiology: Crop development, growth and
               yield, In:  Brassica Oilseeds: Production and Utilization, Wallingford, UK: C.
               International, pp. 11–64, 1995.
           129. M. Cardone, et al. Brassica carinata as an alternative oil crop for the production of
               biodiesel in Italy: Agronomic evaluation, fuel production by transesterification and
               characterization, Biomass and Bioenergy 25, 623–636, 2003.
           130. T. Genet, M. T. Labuschangne, and A. Hugo. Genetic relationships among Ethiopian
               mustard genotypes based on oil content and fatty acid composition, African Journal
               of Biotechnology 4(11), 1256–1268, 2005.
           131. M. P. Dorado, E. Ballesteros, and F. J. Giménez. Biocombustibles para motores diesel
               procedente de ésteres metílicos de aceite de Brassica carinata sin ácido erúcico, 2005,
               University of Jaen, University of Cordoba, Spain.
           132. M. Cardone, et al. Brassica carinata as an alternative oil crop for the production of
               biodiesel in Italy: Engine performance and regulated and unregulated exhaust emis-
               sions, Environmental Science & Technology 36(21), 4656–4662, 2002.
           133. J. T. Budin, W. M. Breene, and D. H. Putnam. Some compositional properties of
               camelina (Camelina sativa L. Crantz) seeds and oils, JAOCS 72(3), 309–315, 1995.
           134. J. Vollmann, et al. Improvement of Camelina sativa, an underexploited oilseed, In:
               Progress in New Crops, Janick, J. (Ed.), Alexandria, VA: ASHS Press, pp. 357–362,
               1996.
           135. A. Fröhlich and B. Rice. Evaluation of Camelina sativa oil as a feedstock for biodiesel
               production, Industrial Crops and Products 21, 25–31, 2005.
           136. G. Steinke, R. Kirchhoff, and K. D. Mukherjee. Lipase-catalyzed alcoholysis of
               crambe oil and camelina oil for the preparation of long-chain esters, JAOCS 77(4),
               361–366, 2000.
           137. G. Steinke, S. Schonwiese, and K. D. Mukherjee. Alkali-catalyzed alcoholysis of
               crambe oil and camelina oil for the preparation of long-chain esters, JAOCS 77(4),
               367–371, 2000.
           138. H. Y. Zhang, et al. Yellow nut-sedge (Cyperus esculentus L.) tuber oil as a fuel,
               Industrial Crops and Products 5, 177–181, 1996.
           139. B. Pascual, et al. Chufa (Cyperus esculentus L. var. sativis Boeck.): An unconventional
               crop. Studies related to applications and cultivation,  Economic Botany 54(4),
               439–448, 2000.
           140. L. Nan, et al. Use of yellow nut-sedge oil as a substitute for diesel fuel, In: ASAE
               Paper, 1984, ASAE, St. Joseph, MI.
           141. FAO. World oilcrops production, FAOSTAT, FAO Statistics Division, 2006 (avail-
               able from: http://faostat.fao.org/site/408/DesktopDefault.aspx?PageID=408, 2005).
           142. S. S. Chang and C. L. Peterson. Chemical reactions involved in the deep-fat frying
               of foods, JAOCS 55, 718–727, 1978.
           143. M. G. Kulkarni and A. K. Dalai. Waste cooking oil—An economical source for biodiesel:
               A review, Industrial & Engineering Chemistry Research 45(9), 2901–2913, 2006.
           144. M. J. Nye, et al. Conversion of used frying oil to diesel fuel by transesterification:
               Preliminary tests, JAOCS 60(8), 1598–1601, 1983.
           145. M. Mittelbach, B. Pokits, and A. Silberholz. Production and fuel properties of fatty
               acid methyl esters from used frying oil, In: Liquid Fuels from Renewable Resources,
               Nashville, Tennessee: American Society of Agricultural Engineers, 1992.
           146. P. Felizardo, et al. Production of biodiesel from waste frying oils, Waste Management
               26, 487–494, 2006.
           147. S. Zheng, et al. Acid-catalyzed production of biodiesel from waste frying oil, Biomass
               and Bioenergy 30, 267–272, 2006.
           148. M. I. Al-Widyan and A. O. Al-Shyoukh. Experimental evaluation of the transesteri-
               fication of waste palm oil into biodiesel, Bioresource Technology 85, 253–256, 2002.
           149. A. A. Anggraini. Wiederverwertung von gebrauchten Speiseölen/-fetten im energetisch-
               technischen Bereich-ein Verfahren und dessen Bewertung, In: Fachgebiet Agrartechnik,
               1999, Universität Gesamthochschule Kassel, Witzenhausen, Germany, p. 193.
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