Title :
Physico-chemical modeling of positive corona discharge in carbon dioxide
Author :
Yanallah, K. ; Pontiga, F. ; Moreno, H. ; Castellanos, A.
Author_Institution :
Lab. de Genie Phys., Univ. de Tiaret, Tiaret, Algeria
Abstract :
Positive wire-to-cylinder corona discharge in pure CO2 has been simulated using a model that includes elementary plasma processes (ionization, electron attachment and detachment, ion recombination, etc.) and chemical reactions between neutral species. The plasma chemistry model is included in the continuity equations of species, which are coupled with Poissons equation for the electric field and the energy conservation equation for the gas temperature. The experimental values of voltage and current are used as input data into the numerical simulation, and the spatial distributions of electrons, ions, atoms and molecules are then predicted for different gas flow rates. The average concentrations of ozone and carbon monoxide inside the discharge reactor have been experimentally determined by means of ultraviolet and FTIR spectrometry, and their values are compared with the results of the numerical simulation.
Keywords :
Fourier transform spectra; Poisson equation; carbon compounds; corona; plasma chemistry; plasma simulation; ultraviolet spectra; CO2; FTIR spectrometry; Poisson equation; carbon dioxide; carbon monoxide concentrations; chemical reactions; continuity equations; discharge reactor; electric field; elementary plasma processes; energy conservation equation; gas flow rates; gas temperature; numerical simulation; ozone concentrations; physicochemical modeling; plasma chemistry model; positive corona discharge; positive wire-to-cylinder corona discharge; spatial distributions; ultraviolet spectrometry; Corona; Discharges; Equations; Inductors; Ions; Mathematical model; Plasmas;
Conference_Titel :
Electrical Insulation and Dielectric Phenomena (CEIDP), 2010 Annual Report Conference on
Conference_Location :
West Lafayette, IN
Print_ISBN :
978-1-4244-9468-2
DOI :
10.1109/CEIDP.2010.5724035