Electrical charge transport and energy conversion with fluid flow during electrohydrodynamic conduction pumping

被引:34
|
作者
Feng, Yinshan
Seyed-Yagoobi, Jamal
机构
[1] United Technol Res Ctr, Component Grp, Thermal Fluid Sci, E Hartford, CT 06108 USA
[2] IIT, Heat Transfer Enhancement & Two Phase Flow Lab, Dept Mech Mat & Aerosp Engn, Chicago, IL 60616 USA
关键词
14;
D O I
10.1063/1.2720598
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
The electrohydrodynamic (EHD) conduction pumping takes advantage of the electrical Coulomb force exerted on dielectric liquid by externally applied electric field(s). The conduction term here represents a mechanism for electric current flow in which charged carriers are produced not by injection from electrodes or induction from electric fields, but by dissociation of neutral electrolytic species within the dielectric liquid. The EHD conduction pumping can be applied to drive both isothermal liquid and two-phase fluids without the degradation of the working fluid electric properties. Such nonmechanical and low-power-consumption pumping mechanism can be utilized for active flow generation/control under both terrestrial and microgravity conditions. So far, the majority of conducted studies has been focused mainly on the experimental realization of the EHD conduction pumping phenomenon and the computational fluid dynamics simulation verification. More fundamental studies, such as theoretical analysis with convection terms included, generalized nondimensional modeling, and pumping efficiency prediction, are required for a complete understanding of this new EHD pumping phenomenon. An asymptotic nondimensional theoretical model for the EHD conduction pumping has been presented in this paper, with the fluid convection taken into account. The theoretical analysis provided here reveals the effects of flow convection on the EHD conduction pumping and the associated energy transport/conversion during the pumping process. Based on the asymptotic model, the pumping efficiency of the EHD conduction pumping is analytically derived and compared with the experimental data. Such results help clarify the capabilities and limitations corresponding to the nature of the EHD conduction pumping. (C) 2007 American Institute of Physics.
引用
收藏
页数:11
相关论文
共 50 条
  • [21] UTILIZING PHOTON TO CHARGE CONVERSION IN FERROELECTRICS FOR DIRECT CONVERSION OF SOLAR TO ELECTRICAL ENERGY
    PULVARI, CF
    GARCIA, FJ
    FERROELECTRICS, 1976, 10 (1-4) : 243 - 243
  • [22] Numerical simulation for electrokinetic energy conversion during couple stress fluid flow in microtube
    Mallick, B.
    EUROPEAN PHYSICAL JOURNAL PLUS, 2024, 139 (12):
  • [23] Self-exchange charge transport for solar energy conversion
    Motley, Tyler
    DiMarco, Brian
    Meyer, Gerald
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2016, 252
  • [24] Electrohydrodynamic instability in a horizontal fluid layer with electrical conductivity gradient subject to a weak shear flow
    Chang, Min-Hsing
    Ruo, An-Cheng
    Chen, Falin
    JOURNAL OF FLUID MECHANICS, 2009, 634 : 191 - 215
  • [25] Control of adiabatic two-phase dielectric fluid flow distribution with EHD conduction pumping
    Feng, Yinshan
    Seyed-Yagoobi, Jamal
    JOURNAL OF ELECTROSTATICS, 2006, 64 (7-9) : 621 - 627
  • [26] Electrical field and space charge modelling in a viscous fluid flow in a nozzle
    Djuric, Z
    Balachandran, W
    Wilson, CW
    JOURNAL OF PHYSICS D-APPLIED PHYSICS, 1998, 31 (17) : 2132 - 2144
  • [27] A numerical model for charge transport and energy conversion of perovskite solar cells
    Zhou, Yecheng
    Gray-Weale, Angus
    PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2016, 18 (06) : 4476 - 4486
  • [28] CONTROL OF DIELECTRIC FLUID FLOW DISTRIBUTION IN MICRO-TUBES WITH EHD CONDUCTION PUMPING - NUMERICAL STUDY
    Yazdani, Miad
    Seyed-Yagoobi, Jamal
    PROCEEDINGS OF THE ASME/JSME 8TH THERMAL ENGINEERING JOINT CONFERENCE 2011, VOL 3, 2011, : 517 - +
  • [29] THE ENERGY FLUX DURING STATIONARY FLOW OF A FLUID
    BLANK, AD
    IZVESTIYA AKADEMII NAUK SSSR FIZIKA ATMOSFERY I OKEANA, 1982, 18 (08): : 877 - 879
  • [30] Direct Conversion of Chemical Energy into Electrical Energy in the Combustion of a Thin Three-Layer Charge
    Barinov, V. Yu.
    Kovalev, D. Yu.
    Vadchenko, S. G.
    Golosova, O. A.
    Prosyanyuk, V. V.
    Suvorov, I. S.
    Gil'bert, S. V.
    COMBUSTION EXPLOSION AND SHOCK WAVES, 2019, 55 (06) : 678 - 685