Title :
The Reactive Thermal Conductivity of Thermal Equilibrium and Nonequilibrium Plasmas: Application to Nitrogen
Author :
Wang, Weizong ; Rong, Mingzhe ; Yan, Jiu Dun ; Wu, Yi
Author_Institution :
Sch. of Electr. Eng., Xi´´an Jiaotong Univ., Xi´´an, China
fDate :
4/1/2012 12:00:00 AM
Abstract :
The accuracy of numerical simulation on plasma behavior depends strongly on the reliability of thermophysical property data. Large number of studies for thermal plasma properties in the local thermodynamic equilibrium (LTE) exist; however, the database for thermal nonequilibrium plasmas is still far from completeness. This paper derives a general expression of total reactive thermal conductivity (TRTC) with great applicability to monatomic, diatomic, and polyatomic gases in terms of a two-temperature model. The derived formula is applied to nitrogen plasmas under thermal equilibrium and nonequilibrium conditions, considering its wide use in plasma systems and switching devices. Typical calculated results of TRTC with two different Saha equations and Guldberg-Waage equations in the temperature range of 300 K-40 000 K under different degrees of nonequilibrium are given and compared with those computed according to Brokaw and Butler´s derivation for the special case of LTE plasmas, which shows excellent agreement. The influence of different expressions for Saha equations and Guldberg-Waage equations, together with different pressures of 0.1, 1, 3, 5, and 10 atm, on the TRTC evaluated by this newly developed expression is presented as well. These provide reliable reference data for use in the simulation of plasmas.
Keywords :
nitrogen; numerical analysis; plasma simulation; plasma thermodynamics; plasma transport processes; thermal conductivity; Brokaw derivation; Butler´s derivation; Guldberg-Waage equations; N2; Saha equations; diatomic gas; local thermodynamic equilibrium plasmas; monatomic gas; nitrogen plasmas; nonequilibrium degrees; numerical simulation; plasma behavior; plasma simulation; plasma systems; polyatomic gas; switching devices; temperature 300 K to 40000 K; thermal nonequilibrium condition; thermal nonequilibrium plasmas; thermal plasma properties; thermophysical property data reliability; total reactive thermal conductivity; two-temperature model; Chemicals; Equations; Ionization; Mathematical model; Nitrogen; Plasma temperature; Nitrogen; thermal plasmas; total reactive thermal conductivity (TRTC); two-temperature (2-T) model;
Journal_Title :
Plasma Science, IEEE Transactions on
DOI :
10.1109/TPS.2012.2185717