Title
Multiphysics Simulation Of Corona Discharge Induced Ionic Wind
Abstract
Ionic wind devices or electrostatic fluid accelerators are becoming of increasing interest as tools for thermal management, in particular for semiconductor devices. In this work, we present a numerical model for predicting the performance of such devices; its main benefit is the ability to accurately predict the amount of charge injected from the corona electrode. Our multiphysics numerical model consists of a highly nonlinear, strongly coupled set of partial differential equations including the Navier-Stokes equations for fluid flow, Poisson's equation for electrostatic potential, charge continuity, and heat transfer equations. To solve this system we employ a staggered solution algorithm that generalizes Gummel's algorithm for charge transport in semiconductors. Predictions of our simulations are verified and validated by comparison with experimental measurements of integral physical quantities, which are shown to closely match. (C) 2013 AIP Publishing LLC.
Year
DOI
Venue
2013
10.1063/1.4843823
JOURNAL OF APPLIED PHYSICS
Keywords
Field
DocType
anodes,cathodes,electric fields,electric currents
Corona discharge,Nonlinear system,Poisson's equation,Multiphysics,Mechanics,Fluid dynamics,Ion wind,Partial differential equation,Classical mechanics,Condensed matter physics,Navier–Stokes equations,Physics
Journal
Volume
Issue
ISSN
114
23
0021-8979
Citations 
PageRank 
References 
0
0.34
1
Authors
6
Name
Order
Citations
PageRank
Davide Cagnoni100.34
Francesco Agostini200.34
Thomas Christen3335.96
Carlo de Falco4396.89
Nicola Parolini511.03
Ivica Stevanovic662.21