• Title of article

    Analysis of solvent-free ethyl oleate enzymatic synthesis at equilibrium conditions

  • Author/Authors

    V. Bucala، نويسنده , , M.L. Foresti، نويسنده , , G. Trubiano، نويسنده , , M.L. Ferreira، نويسنده , , M. Briozzo، نويسنده , , S. Bottini، نويسنده ,

  • Issue Information
    روزنامه با شماره پیاپی سال 2006
  • Pages
    7
  • From page
    914
  • To page
    920
  • Abstract
    This work reports experimental equilibrium data for the esterification of pure oleic acid and a fatty acid mixture with ethanol, using an immobilized Candida antarctica B lipase as catalyst. Reactions are performed in a solvent-free system, containing a mixture of substrates and different amounts of distilled water. According to the initial amount of water and the extent of the reaction, one or two liquid phases are present. Therefore, when the equilibrium is achieved, the liquid–liquid and chemical reaction equilibria have to be simultaneously satisfied. Several reports dealing with enzymatic reactions performed in two-phase systems have found that the value of the reaction equilibrium constant calculated from overall experimental concentrations varies not only with temperature but also with substrate ratio and water content. Although this approach is a valuable way to explore equilibrium shifts in biphasic systems, it is limited to ideal systems with constant partition coefficients. The aim of this work is to consider the biphasic nature of the reactive mixture through a computational procedure that simultaneously takes into account liquid–liquid and reaction equilibria. This approach enables the determination of a classical temperature-dependent thermodynamic equilibrium constant, which accurately fits experimental equilibrium conversions over a wide range of operating conditions.
  • Keywords
    Enzymatic esterification , Liquid–liquid equilibrium , Biphasic constant , Chemical reaction equilibrium
  • Journal title
    Enzyme and Microbial Technology
  • Serial Year
    2006
  • Journal title
    Enzyme and Microbial Technology
  • Record number

    1174548