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Research Article

Optimization of batch Novozym435-catalyzed transesterification of waste cooking oil with methanol for biodiesel production in a solvent-free medium

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References

  • Alhassan, Y., Kumar, N., Bugaje, I. M., and Mishra, C. 2014. Optimization of Gossypium arboretum seed oil biodiesel production by central composite rotatable model of response surface methodology and evaluation of its fuel properties. J. Pet. Technol. Altern. Fuels 5:1–12.
  • ASTM Standard D-6751-15ce1. 2008. Standard Specification for Biodiesel Fuel Blend Stock (B100) for Middle Distillate Fuels. West Conshohocken, PA: American Society for Testing and Materials.
  • ASTM. 2010. Annual Book of ASTM Standards. Petroleum Products and Lubricants (I–III), Vols. 05.01–05.03. West Conshohocken, PA: American Society for Testing and Materials.
  • Boey, P.-L., Maniam, G. P., Abd Hamid, S., and Ali, D. M. H. 2011. Utilization of waste cockle shell (Anadara granosa) in biodiesel production from palm olein: Optimization using response surface methodology. Fuel 90:2353–2358.
  • Chang, H.-M., Liao, H.-F., Lee, C.-C., and Shieh, C.-J. 2005. Optimized synthesis of lipase –catalyzed biodiesel by Novozym435. J. Chem. Technol. Biotechnol. 80:307–312.
  • Diya’uddeen, B. H., Abdul Aziz, A. R., Daud, W. M. A. W., and Chakrabarti, M. H. 2012. Performance evaluation of biodiesel from used domestic waste oils: A review. Process Saf. Environ. 90:164–179.
  • Du, W., Xu, Y.-y., Zeng, J., and Liu, D.-h. 2004. Novozym 435-catalysed transesterification of crude soya bean oils for biodiesel production in a solvent-free medium. Biotechnol. Appl. Biochem. 40:187–190.
  • El-Gendy, N. Sh., Ali, B. A., Abu Amr, S. S., Abdul Aziz, H., and Mohamed, A. S. 2016. Application of D-optimal design and RSM to optimize the transesterification of waste cooking oil using natural and chemical heterogeneous catalyst. Energ. Sour., Part A. 38:1852–1866.
  • El-Gendy, N. Sh., Deriase, S. F., Hamdy, A., and Abdallah, R. I. 2015a. Statistical optimization of biodiesel production from sunflower waste cooking oil using basic heterogeneous biocatalyst prepared from eggshells. Egypt. J. Pet. 24:37–48.
  • El-Gendy, N. Sh., El-Gharabawy, A. S. A., Abu Amr, S. S., and Ashour, F. H. 2015b. Response surface optimization of an alkaline transesterification of waste cooking oil. Int. J. ChemTech Res. 8:385–398.
  • El-Gendy, N Sh., Hamdy, A., and Abu Amr, S. S. 2015c. Application of D-optimal design and RSM to optimize the transesterification of waste cooking oil using a biocatalyst derived from waste animal bones and Novozym 435. Energ. Sour. Part A. 37:1233–1251.
  • Haigh, K. F., Vladisavljević, G. T., Reynolds, G. C., Nagy, Z., and Saha, B. 2014. Kinetics of the pre-treatment of used cooking oil using Novozyme 435 for biodiesel production. Chem. Eng. Res. Des. 92:713–719.
  • International Energy Agency (IEA). 2007. World Energy Outlook. https://www.iea.org/publications/freepublications/publication/WEO_2007.pdf
  • Jairam, S., Kolar, P., Sharma-Shivappa, R., Osborne, J. A., and Davis, J. P. 2012. KI-impregnated oyster shell as a solid catalyst for soybean oil transesterification. Bioresour. Technol. 104:329–335.
  • JUS EN14214. 2004. Automotive Fuels. Fatty Acid Methyl Esters (FAME) for Diesel Engines- Requirements and Test Methods. Belgrade, Serbia: Standardization Institute.
  • Köse, Ö, Tüter, M., and Aksoy, H. A. 2002. Immobilized Candida antarctica lipase-catalyzed alcoholysis of cotton seed oil in a solvent-free medium. Bioresour. Technol. 83:125–129.
  • Lai, C.-C., Zullaikah, S., Vali, S. R., and Ju, Y.-H. 2005. Lipase-catalyzed production of biodiesel from rice bran oil. J. Chem. Technol. Biotechnol. 80:331–337.
  • Lee, S. L., Wong, Y. C., Tan, Y. P., and Yew, S. Y. 2015. Transesterification of palm oil to biodiesel by using waste obtuse horn shell-derived CaO catalyst. Energ. Convers. Manage. 93:282–288.
  • Li, Y. X., and Dong, B. X. 2016. Optimization of lipase-catalyzed transesterification of cotton seed oil for biodiesel production using response surface methodology. Braz. Arch. Biol. Technol. 59: e16150357, Jan/Dec 2016, 1–7. doi: 10.1590/1678-4324-2016150357
  • Luna, C., Verdugo, C., Sancho, E. D., Luna, D., Calero, J., Posadillo, A., Bautista, F. M., and Romero, A. A. 2014. Production of a biodiesel-like biofuel without glycerol generation, by using Novozym 435, an immobilized Candida antarctica lipase. Bioresour. Bioprocessing 1:11 http://www.bioresourcesbioprocessing.com/content/1/1/11
  • Maddikeri, G. L., Pandit, A. B., and Gogate, P. R. 2012. Intensification approaches for biodiesel synthesis from waste cooking oil: a review. Ind. Eng. Chem. Res. 51:14610–14628.
  • Mostafa, S. S. M., and El-Gendy, N. Sh. 2013. Evaluation of fuel properties for microalgae Spirulina platensis bio-diesel and its blends with Egyptian petro-diesel. Arab. J. Chem. (Article in Press).
  • Said, N. H., Ani, F. N., and Said, M. F. M. 2015. Review of the production of biodiesel from waste cooking oil using solid catalysts. J. Mech. Eng. Sci. 8:1302–1311.
  • Shimada, Y., Watanabe, Y., Sugihara, A., and Tominaga, Y. 2002. Enzymatic alcoholysis for biodiesel fuel production and application of the reaction to oil processing. J. Mol. Catal. B Enzym. 17:133–142.
  • Simas, A., Lapa, N., and Oliveria, A. C. 2009. Optimization of enzymatic transesterification of rapeseed oil using response surface methodology. Proceeding of the 17th European Biomass Conference and Exhibition. 29 June-3 July, 2009, Hamburg, Germany, p. 1532–1537.
  • Soumanou, M. M., Djenontin, S. T., Tchobo, F. P., Sohounhloue, D. C. K., and Bornscheuer, U. T. 2012. Lipase-catalysed biodiesel production from Jatropha curcas oil. Lipid Technol. 24:158–160.
  • Verdasco-Martín, C. M., Villalba, M., dos Santos, J. C. S., Tobajas, M., Fernandez-Lafuente, R. and Otero, C. 2016. Effect of chemical modification of Novozym 435 on its performance in the alcoholysis of camelina oil. Biochem. Eng. J. 111: 75–86.
  • Villalba, M., Verdasco-Martín, C. M., dos Santos, J. C. S., Fernandez-Lafuente, R., and Otero, C. 2016. Operational stabilities of different chemical derivatives of Novozym 435 in an alcoholysis reaction. Enzyme Microb. TechNOL. 90:35–44.
  • Wu, W. H., Foglia, T. A., Marmer, W. N., and Phillips, J. G. 1999. Optimizing production of ethyl esters of grease using 95% ethanol by response surface methodology. J. Am. Oil Chem. Soc. 76:517–521.

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