Modeling of dielectric fluid solidification with charged particles in electric fields and reduced gravity Article

Dulikravich, GS, Ahuja, V, Lee, S. (1994). Modeling of dielectric fluid solidification with charged particles in electric fields and reduced gravity . 25(3), 357-373. 10.1080/10407799408955925

cited authors

  • Dulikravich, GS; Ahuja, V; Lee, S

abstract

  • A mathematical model and an explicit finite-difference iterative integration algorithm for two-dimensional laminar steady flow and solidification of an incompressible, viscous, electrically conducting but neutrally charged melt containing electrically charged panicles and exposed to an externally applied electrostatic field were developed. The system of governing electrohydrodynamic equations was derived from a combination of Maxwell's equations and the Navier-Stokes equations, including thermally induced buoyancy, latent heat release, and Joule heating, while accounting for the mushy region. Physical properties were treated as arbitrarily temperature-dependent. Numerical results demonstrate the existence of strong electrothermoconvective motion in the melt and quantify its influence on the amount of accrued solid, deposition pattern of the electrically charged particles inside the accrued solid, and the melt/solid interface shape. © 1994 Taylor & Francis Group, LLC.

publication date

  • January 1, 1994

Digital Object Identifier (DOI)

start page

  • 357

end page

  • 373

volume

  • 25

issue

  • 3