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- W2141525356 abstract "ABSTRACT: This contribution presents an elegant and efficient numerical model of a multi‐component inductive plasma under chemical non‐equilibrium. The plasma is modeled by a finite number of species. Chemical reactions are taken into account by Arrhenius‐type source terms. The plasma thermodynamic properties are computed from statistical mechanics. The plasma transport properties are computed with the method of Chapman and Enskog. Multi‐component species diffusive fluxes are obtained from the full Stefan‐Maxwell equations by means of a straightforward iterative procedure, in which no distinction needs to be made between electrons and heavy particles. The governing equations are discretized in a second order accurate cell‐centered finite volume manner on a collocated mesh. The discretized system of equations is solved with a damped Newton method. Powerful Krylov subspace methods are used to efficiently solve the linear systems arising from the Newton linearization. Results are presented for a five‐species nitrogen plasma. The effect of chemical non‐equilibrium is investigated at various pressures. Though some problems still need to be addressed, good convergence is already found. Calculations of eleven‐species air plasmas under thermochemical non‐equilibrium seem feasible for the near future." @default.
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- W2141525356 date "1999-12-01" @default.
- W2141525356 modified "2023-10-09" @default.
- W2141525356 title "Numerical Simulation of Multi‐Component Inductive Plasma Flows under Chemical Non‐Equilibrium" @default.
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- W2141525356 doi "https://doi.org/10.1111/j.1749-6632.1999.tb08782.x" @default.
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