Abstract
Numerical simulations and experimental studies were conducted to characterize direct current (dc) hydrogen discharge for a pin plate electrode configuration having an inter-electrode separation distance of 400 νm. A self-consistent two-dimensional hybrid model was developed to simulate the atmospheric pressure dc hydrogen micro-discharges. The discharge simulation model considered consists of momentum and energy conservation equations for a multi-component gas mixture, conservation equations for each component of the mixture (electrons, ions, excited species and neutrals) and state relations. The model uses a drift-diffusion approximation for the electron and the ion fluxes. The species considered include H, H2, H+, , , , H 2 v≤1 and the electrons. The electric field is obtained from the solution of Poisson's equation. Numerical simulations and experimental measurements indicated some of the key features of a normal glow discharge: flat voltage-current characteristics and constant cathode current density. Basic plasma properties such as electron number density, gas temperature, electric field and electron temperature were studied. The model predicted a constant current density of ∼22 A cm-2 in the normal glow regime. The normal current density was found to be a temperature scaled value of a low pressure normal current density. The ion Joule heating and Frank-Condon heating were found to be the dominant gas heating mechanisms. The peak gas temperature of ∼500 K indicated the discharge to be a non-thermal non-equilibrium discharge. Predictions from the model compares favorably well with the experimental measurements. © 2007 IOP Publishing Ltd.
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CITATION STYLE
Farouk, T., Farouk, B., Staack, D., Gutsol, A., & Fridman, A. (2007). Modeling of direct current micro-plasma discharges in atmospheric pressure hydrogen. Plasma Sources Science and Technology, 16(3), 619–634. https://doi.org/10.1088/0963-0252/16/3/023
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