Title :
Calculation of radiative heat transfer in SF6 arc plasmas
Author :
Aubrecht, Vladimír ; Bartlová, Milada
Author_Institution :
Dept. of Electr. Machines & Apparatus, Tech. Univ. of Brno, Czech Republic
fDate :
10/1/1997 12:00:00 AM
Abstract :
Radiation transport in SF6 are plasmas have been treated for pressures of 0.101, 0.5, and 1.0 MPa. We have investigated the use of an approximate method of partial characteristics. We have calculated spectral absorptivities for SF6 plasmas for temperatures from 300 to 35 000 K, and have used these absorptivities to calculate the two functions designated ΔI and ΔSim. These functions are integrals over all radiation frequencies for given line segments with a linear variation of temperature along the line. The ΔI and ΔSim values are functions of the end temperatures and the length of the line, and are used to evaluate radiation transfer from line segments in the plasma where the temperature variation for each line segment is approximated as being linear. The validity of this method of partial characteristics has been demonstrated by comparing exact calculations with the approximate calculations to evaluate radiation intensities, radiation fluxes, and divergence of radiation fluxes for specified temperature profiles. The method of partial characteristics has been applied to one- and three-dimensional calculations of radiative heat transfer in simplified temperature profiles. Agreement up to 10% is obtained with exact calculations, but with a large reduction of computation time
Keywords :
arcs (electric); heat radiation; plasma temperature; plasma transport processes; radiative transfer; sulphur compounds; 0.101 MPa; 0.5 MPa; 1.0 MPa; SF6; SF6 arc plasmas; approximate method; exact calculations; one-dimensional calculation; partial characteristics; radiation flux; radiation frequencies; radiation intensities; radiation transport; radiative heat transfer; spectral absorptivities; temperature profiles; temperature variation; three-dimensional calculation; Absorption; Energy exchange; Frequency; Heat transfer; Isothermal processes; Plasma applications; Plasma properties; Plasma temperature; Plasma transport processes; Sulfur hexafluoride;
Journal_Title :
Plasma Science, IEEE Transactions on