DocumentCode :
1735406
Title :
Numerical analysis on effects of various cathode and nozzle geometries on plasma characteristics of transferred arc torches for waste treatment
Author :
Park, J.M. ; Hur, Min ; Hong, Seung Ho
Author_Institution :
Seoul Nat. Univ., South Korea
fYear :
2001
Firstpage :
292
Abstract :
Summary form only given, as follows. A numerical model is presented to investigate the influences of cathode and nozzle geometries on the characteristics of transferred arc torches for waste melting process. The arc plasma is described in the atmospheric condition by a two dimensional magnetohydrodynamic (MHD) model with the assumptions of steady state, axisymmetry, local thermodynamic equilibrium (LTE) and optically thin plasma. In order to simulate the realistic torch configurations with complex nozzle and cathode arrangements, the unstructured triangular and/or quadrilateral grid systems are used with a finite volume discretization, gradient reconstruction procedure and a SIMPLE-like pressure-correction algorithm. For the self-consistent prediction of temperature profiles on the anode workpiece and heat transfer rates to it, the energy conservation and current continuity equations are solved not only in the thermal plasma region but also in the anode region with the special treatment of electric conductivity and energy balance at the interface of the plasma and the anode material. By the suggested numerical model, the temperature and flow field distributions of argon plasmas and the heat flux rates to anode material are calculated for the various nozzle length and diameter and for a wide range of vertex angle of the cone-shaped cathode. As a result of these calculations, optimum geometrical design parameters of the transferred plasma torch are obtained for the waste melting process. The predicted results are validated by comparing with some experimental data.
Keywords :
arcs (electric); argon; cathodes; environmental factors; finite volume methods; nozzles; numerical analysis; plasma applications; plasma diagnostics; plasma magnetohydrodynamics; plasma materials processing; plasma simulation; plasma temperature; plasma thermodynamics; plasma torches; plasma transport processes; temperature distribution; Ar; Ar plasmas; LTE; MHD model; SIMPLE-like pressure-correction algorithm; anode material; anode region; anode workpiece; arc plasma; atmospheric condition; axisymmetry; cathode geometries; complex cathode arrangements; complex nozzle arrangements; cone-shaped cathode; current continuity equations; electric conductivity; energy balance; energy conservation equations; finite volume discretization; flow field distributions; gradient reconstruction procedure; heat flux rates; heat transfer; local thermodynamic equilibrium; nozzle geometries; nozzle length; nozzle length diameter; numerical analysis; numerical model; optically thin plasma; optimum geometrical design parameters; plasma characteristics; quadrilateral grid systems; realistic torch configurations; self-consistent prediction; steady state; temperature distributions; temperature profiles; thermal plasma region; transferred arc torches; transferred plasma torch; two dimensional magnetohydrodynamic model; unstructured triangular systems; vertex angle; waste melting process; waste treatment; Anodes; Atmospheric modeling; Cathodes; Magnetohydrodynamics; Numerical analysis; Numerical models; Plasma materials processing; Plasma properties; Plasma simulation; Plasma temperature;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Pulsed Power Plasma Science, 2001. IEEE Conference Record - Abstracts
Conference_Location :
Las Vegas, NV, USA
Print_ISBN :
0-7803-7141-0
Type :
conf
DOI :
10.1109/PPPS.2001.960949
Filename :
960949
Link To Document :
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