Title :
Numerical Study on Heat Flow During Catalytic Dissociation of Ozone in a Dielectric Barrier Discharge Ozonizer
Author :
Ruey-Chang Hsiao ; Ta-Lun Sung ; Chung-Ming Liu ; Teii, Shinriki ; Ono, Shigeru ; Teii, Kungen ; Ebihara, Kenji
Author_Institution :
Dept. of Chem. & Mech. Eng., Lunghwa Univ. of Sci. & Technol., Taoyuan, Taiwan
Abstract :
A simple heat flow model is established for numerical analysis of the effect of catalytic dissociation of ozone on electrode surface temperature in a coaxial cylindrical-type dielectric barrier discharge ozonizer. The amount of heat consumed by the ozone decomposition at the electrode surface is determined from the balance of heat flow among the discharge gas, electrode, and cooling water. Our calculation using the experimental data shows that the ozone decomposition by 1.6% in total ozone reaching the electrode surface is required to explain the observed temperature decrease from about 20 °C to 8 °C for a stainless steel electrode, while that by 4.5% is needed to explain the temperature decrease from about 20 °C to 19 °C for a copper electrode. The decomposition rates calculated in the discharge are about two orders of magnitude higher than those measured in gas flow downstream of a similar discharge.
Keywords :
catalysis; copper; dielectric-barrier discharges; dissociation; numerical analysis; ozone; plasma applications; plasma chemistry; stainless steel; Cu; O3; catalytic dissociation; coaxial cylindrical-type dielectric barrier discharge ozonizer; cooling water; copper electrode; electrode surface temperature; heat flow; ozone decomposition; stainless steel electrode; Discharges (electric); Educational institutions; Electrodes; Gases; Steel; Surface discharges; Temperature measurement; Atmospheric pressure; catalyst; copper; decomposition; dielectric barrier discharge; dissociation; electrode temperature; heat flow; microplasma; ozonizer; stainless steel; stainless steel.;
Journal_Title :
Plasma Science, IEEE Transactions on
DOI :
10.1109/TPS.2014.2381258