Extended-field electromagnetic model for inductively coupled plasma

Электромагнитная модель индуктивно связанной плазмы с расширенной областью расчёта
Siwen Xue, Pierre Proulx, Maher I. Boulos
2001-06-06

2D vector potential formulationaxial magnetic field validationextended-field electromagnetic modelfar-field boundary conditionsinductively coupled plasma
An extended-field (EF), two dimensional (2D) model formulation is proposed for inductively coupled plasma. By extending the calculating domain of the electromagnetic (EM) field outside of the plasma discharge region, the boundary conditions of vector potential used by the standard (ST) 2D model are replaced by simpler far field boundary conditions. The extended model converges faster than the standard formulation and gives rise to consistent solutions throughout the computational domain. Vector potential equations are solved with corresponding continuity, momentum, and energy transfer equations using the commercial code `FLUENT'. The computational domain for vector potential equations are extended well beyond the induction coil region, while for all the other equations, computations are limited to the discharge region inside the plasma confinement tube. The computational results are compared with those obtained using the ST 2D model. The difference between the results of the two models is noted mostly in the entrance regions of the flow, and close to the induction coil. To validate the EF model, a load with constant electric conductivity is placed centrally in the coil region and the calculated radial profile of the axial magnetic field is compared with existing analytical solutions. The results are in good agreement within an uncertainty of 1%.
1
A two-dimensional extended-field electromagnetic model is proposed for inductively coupled plasma simulations.
2
Differences between extended-field and standard-model results occur mainly near flow entrance regions and the induction coil.
3
Extending the electromagnetic-field domain beyond the plasma discharge replaces standard vector-potential boundary conditions with simpler far-field conditions.
4
The extended-field formulation converges faster than the standard model and produces consistent solutions across the computational domain.
5
Validation using a constant-conductivity central load agrees with analytical axial magnetic-field profiles within 1% uncertainty.

Inductively coupled plasma discharge and its electromagnetic field in a plasma confinement tube

Extended-field 2D electromagnetic modeling, including boundary-condition treatment, convergence, computational-domain consistency, and accuracy of magnetic-field predictions compared with the standard model and analytical solutions

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Publication Date
2001-06-06
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Authors
Siwen Xue
Pierre Proulx
Maher I. Boulos
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