DocumentCode
1165181
Title
Theoretical/numerical study of electrohydrodynamic pumping through conduction phenomenon
Author
Jeong, Seong-Il ; Seyed-Yagoobi, Jamal ; Atten, Pierre
Author_Institution
Dept. of Mech. Eng., Texas A&M Univ., College Station, TX, USA
Volume
39
Issue
2
fYear
2003
Firstpage
355
Lastpage
361
Abstract
In an isothermal liquid, only the Coulomb force which is the force acting on the free charges, can contribute to the net electrohydrodynamic (EHD) motion. In the absence of a direct charge injection or induction, the charges can be generated through the dissociation process of the fluid. The generated charges by dissociation are redistributed by the applied electric field, resulting in the heterocharge layers around the electrodes. The pumping of an isothermal liquid without ion injection is associated with the heterocharge layers of finite thickness in the vicinity of the electrodes. This type of pumping is referred to as the conduction pumping. This paper investigates the pressure head generated by the conduction pumping mechanism theoretically through the numerical solutions. For this purpose, a theoretical model for the static case (i.e., without a fluid motion) is established and a numerical code using finite volume method is developed. Electric potential, electric field, charge density, and electric body force distributions for the selected electrode configuration are presented. The generated pressure as a function of the applied voltage is also presented. The numerical results confirm the EHD conduction pumping concept theoretically.
Keywords
dielectric liquids; electric charge; electric field effects; electric potential; electrodes; electrohydrodynamics; finite volume methods; Coulomb force; EHD motion; applied electric field; charge density; charges generation; conduction phenomenon; conduction pumping; dielectric fluids; direct charge induction; direct charge injection; dissociation process; electric body force distributions; electric field; electric potential; electrohydrodynamic motion; electrohydrodynamic pumping; finite volume method; free charges; ground ring electrodes; heterocharge layers; high-voltage hollow-tube electrodes; isothermal liquid; pressure head generation; Dielectrics; Electric potential; Electrodes; Electrohydrodynamics; Induction generators; Industry Applications Society; Isothermal processes; Pumps; Solids; Voltage;
fLanguage
English
Journal_Title
Industry Applications, IEEE Transactions on
Publisher
ieee
ISSN
0093-9994
Type
jour
DOI
10.1109/TIA.2003.808954
Filename
1189211
Link To Document