• DocumentCode
    2780801
  • Title

    Numerical Simulation of the Electrical Double Layer Development at the Solid and Dielectric Liquid Interface for Flow Electrification Phenomenon

  • Author

    El-Adawy, M. ; Paillat, T. ; Cabaleiro, J.M. ; Touchard, G.

  • Author_Institution
    Electro-Fluid Dynamics Group, Univ. de Poitiers, Poitiers, France
  • fYear
    2010
  • fDate
    3-7 Oct. 2010
  • Firstpage
    1
  • Lastpage
    8
  • Abstract
    At the solid-liquid interface, a charge zone called the Electrical Double Layer (EDL) appears. It is constituted of two zones of opposite sign, one in the solid and another one in the liquid. When a liquid flows through a pipe, there is a disturbance of the EDL and an axial streaming current is generated. This current is due to the convection of the charges coming from the electrical double layer. In this paper, we present a numerical simulation of the EDL development process in the case of a liquid containing additives or impurities which are partially dissociated into positive and negative ones. We treat the case of laminar flow and an interfacial reaction whose conversion is small compared to the concentration of positive and negative ions in the bulk solution. However, in this paper, the formation of the EDL at the solid-liquid interface is investigated without any flow (static case). Thus, the rate of the wall reaction and the resulting charge concentration in the liquid can be studied. Then, once the equilibrium of physicochemical reaction is reached, convection is forced and the EDL dynamic behavior has been studied (dynamic case). Also the effect of flow velocity on both the streaming current and potential build-up has been undertaken. The physicochemical reaction at the solid-liquid interface, the evolution of the space charge density in terms of both the axial coordinates and flow velocity, and the equations of conservation of charge of the liquid species have been implemented to a developed version of "Electricite de France" finite volume CFD tool Code_Saturne, which is designed to solve the Navier-Stokes equations.
  • Keywords
    Navier-Stokes equations; chemically reactive flow; computational fluid dynamics; convection; dielectric liquids; electrohydrodynamics; finite volume methods; flow simulation; laminar flow; pipe flow; two-phase flow; EDL dynamic behavior; Navier-Stokes equation; axial streaming current; charge concentration; charge conservation; charge convection; dielectric liquid; electrical double layer; finite volume CFD tool; flow electrification phenomenon; flow velocity effect; interfacial reaction; laminar flow; liquid containing additives; liquid containing impurities; liquid pipe flow; negative ion concentration; numerical simulation; physicochemical reaction equilibrium; positive ion concentration; solid-liquid interface; space charge density; Boundary conditions; Conductivity; Ions; Mathematical model; Petroleum; Solids; Space charge;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Industry Applications Society Annual Meeting (IAS), 2010 IEEE
  • Conference_Location
    Houston, TX
  • ISSN
    0197-2618
  • Print_ISBN
    978-1-4244-6393-0
  • Type

    conf

  • DOI
    10.1109/IAS.2010.5616858
  • Filename
    5616858