Time-dependent coupling of electron energy distribution function, vibrational kinetics of the asymmetric mode of CO2 and dissociation, ionization and electronic excitation kinetics under discharge and post-discharge conditions
Articolo
Data di Pubblicazione:
2017
Abstract:
A time-dependent self-consistent model based on the coupling of the Boltzmann equation for
the electron energy distribution function (EEDF) with the non-equilibrium vibrational kinetics
of the asymmetric mode, as well as a simplified global model, have been implemented for a
pure CO2 plasma. The simplified time-dependent global model takes into account dissociation
and ionization as well as the reverse of these processes. It also takes into account the
excitation/de-excitation of an electronic excited state at 10.5 eV. The model has been applied to
describe the discharge and post-discharge conditions typically met in an atmospheric-pressure
dielectric barrier discharge (DBD) and in a moderate-pressure microwave discharge. The
reported results show the strong coupling between the excited state and the electron energy
distribution kinetics due to superelastic (vibrational and electronic) collisions. Moreover,
the dissociation rate from a pure vibrational mechanism can become competitive with the
corresponding rate from the direct electron impact mechanism at high values of vibrational
temperature.
Tipologia CRIS:
01.01 Articolo in rivista
Keywords:
CO dissociation 2; Electron Boltzmann equation; Non-equilibrium vibrational kinetic; Self-consistent model; Superelastic collisions
Elenco autori:
Capitelli, Mario; Pietanza, LUCIA DANIELA; Colonna, Gianpiero; D'Ammando, Giuliano
Link alla scheda completa:
Pubblicato in: