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Recent progress on innovative and potential technologies for glycerol transformation into fuel additives: A critical review

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  • Rahmat, Norhasyimi
  • Abdullah, Ahmad Zuhairi
  • Mohamed, Abdul Rahman

Abstract

Glycerol emerges as a significant worth chemical that can be converted into high value products. In the prospect of biorefinery industries and great demand towards renewable sources, glycerol has proved to have tremendous potential to be transformed, thus supersede conventional petroleum derived fuel additive. Various types of oxygenated biocomponents and rigorous studies of glycerol transformation into fuel additives are presented in this review paper. Particular focus is given to etherification, acetylation and acetalation processes with specific behaviors in the respective reaction system.

Suggested Citation

  • Rahmat, Norhasyimi & Abdullah, Ahmad Zuhairi & Mohamed, Abdul Rahman, 2010. "Recent progress on innovative and potential technologies for glycerol transformation into fuel additives: A critical review," Renewable and Sustainable Energy Reviews, Elsevier, vol. 14(3), pages 987-1000, April.
  • Handle: RePEc:eee:rensus:v:14:y:2010:i:3:p:987-1000
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    References listed on IDEAS

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    1. Adhikari, Sushil & Fernando, Sandun D. & Haryanto, Agus, 2008. "Hydrogen production from glycerin by steam reforming over nickel catalysts," Renewable Energy, Elsevier, vol. 33(5), pages 1097-1100.
    2. Kenkel, Philip L. & Holcomb, Rodney B., 2008. "Feasibility of on-farm or small scale oilseed processing and biodiesel production," Integration of Agricultural and Energy Systems Conference, February 12-13, 2008, Atlanta, Georgia 48710, Farm Foundation.
    3. Kadam, Kiran L., 2002. "Environmental benefits on a life cycle basis of using bagasse-derived ethanol as a gasoline oxygenate in India," Energy Policy, Elsevier, vol. 30(5), pages 371-384, April.
    4. Quintero, J.A. & Montoya, M.I. & Sánchez, O.J. & Giraldo, O.H. & Cardona, C.A., 2008. "Fuel ethanol production from sugarcane and corn: Comparative analysis for a Colombian case," Energy, Elsevier, vol. 33(3), pages 385-399.
    5. Tad Patzek & S.-M. Anti & R. Campos & K. ha & J. Lee & B. Li & J. Padnick & S.-A. Yee, 2005. "Ethanol From Corn: Clean Renewable Fuel for the Future, or Drain on Our Resources and Pockets?," Environment, Development and Sustainability: A Multidisciplinary Approach to the Theory and Practice of Sustainable Development, Springer, vol. 7(3), pages 319-336, September.
    6. Hu, Zhiyuan & Tan, Piqiang & Pu, Gengqiang, 2006. "Multi-objective optimization of cassava-based fuel ethanol used as an alternative automotive fuel in Guangxi, China," Applied Energy, Elsevier, vol. 83(8), pages 819-840, August.
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