Plasma Temperature Profile in the Boundary Layers of an MHD Channel

1986 ◽  
Vol 25 (Part 1, No. 2) ◽  
pp. 270-274 ◽  
Author(s):  
Yoshiaki Aoki ◽  
Tadashi Seidou ◽  
Hidetsuka Imajyo ◽  
Hiroki Kitagawa ◽  
Naoyuki Kayukawa ◽  
...  
1987 ◽  
Author(s):  
YOSHIAKI AOKI ◽  
TADASHI SEIDOU ◽  
NAOYUKI KAYUKAWA ◽  
HATSUO YAMAZAKI

2003 ◽  
Author(s):  
Y. Aoki ◽  
H. Kitagawa ◽  
K. Sumi ◽  
S. Oikawa ◽  
N. Kayukawa ◽  
...  

1980 ◽  
Author(s):  
J. GERTZ ◽  
T. OPAR ◽  
A. SOLBES ◽  
G. WEYL

2008 ◽  
Vol 74 (3) ◽  
pp. 353-360
Author(s):  
A.P. SMIRNOV ◽  
W. PARK ◽  
YA.N. ISTOMIN ◽  
D.P. KOSTOMAROV ◽  
E.A. SHEINA ◽  
...  

AbstractThe plasma temperature in a new plasma source shows unusual behaviour at low pressures (about 1 mTorr) and high absorbed powers. In Ar plasma at pressures of about 1 mTorr, the electron temperature shows a pronounced maximum inside an electromagnetic accelerator, which is followed by a rapid drop at the boundary between the accelerator region and the main chamber. In this paper a neoclassical thermo-conductivity model based on the analysis of the electron trajectories is proposed to describe the sharp electron temperature profile. Quantitative agreement of the calculated temperature profile with the experiment is observed.


1986 ◽  
Vol 25 (Part 1, No. 6) ◽  
pp. 860-863 ◽  
Author(s):  
Yoshiaki Aoki ◽  
Naoyuki Kayukawa ◽  
Hatsuo Yamazaki

2008 ◽  
Vol 130 (2) ◽  
Author(s):  
Xia Wang ◽  
Luciano Castillo ◽  
Guillermo Araya

Based on the theory of similarity analysis and the analogy between momentum and energy transport equations, the temperature scalings have been derived for forced convection turbulent boundary layers. These scalings are shown to be able to remove the effects of Reynolds number and the pressure gradient on the temperature profile. Furthermore, using the near-asymptotic method and the scalings from the similarity analysis, a power law solution is obtained for the temperature profile in the overlap region. Subsequently, a composite temperature profile is found by further introducing the functions in the wake region and in the near-the-wall region. The proposed composite temperature profile can describe the entire boundary layer from the wall all the way to the outer edge of the turbulent boundary layer at finite Re number. The experimental data and direct numerical simulation (DNS) data with zero pressure gradient and adverse pressure gradient are used to confirm the accuracy of the scalings and the proposed composite temperature profiles. Comparison with the theoretical profiles by Kader (1981, “Temperature and Concentration Profiles in Fully Turbulent Boundary Layers,” Int. J. Heat Mass Transfer, 24, pp. 1541–1544; 1991, “Heat and Mass Transfer in Pressure-Gradient Boundary Layers,” Int. J. Heat Mass Transfer, 34, pp. 2837–2857) shows that the current theory yields a higher accuracy. The error in the mean temperature profile is within 5% when the present theory is compared to the experimental data. Meanwhile, the Stanton number is calculated using the energy and momentum integral equations and the newly proposed composite temperature profile. The calculated Stanton number is consistent with previous experimental results and the DNS data, and the error of the present prediction is less than 5%. In addition, the growth of the thermal boundary layer is obtained from the theory and the average error is less than 5% for the range of Reynolds numbers between 5×105 and 5×106 when compared with the empirical correlation for the experimental data of isothermal boundary layer conditions.


2016 ◽  
Vol 82 (1) ◽  
Author(s):  
M. Namnabat ◽  
S. Behrouzinia ◽  
A. R. Moradi ◽  
K. Khorasani

The output power and the temperature profile of a copper vapour laser were investigated versus frequency with various kinds of back mirror in its resonator cavity. A semi-experimental method was used for measuring the plasma temperature and obtaining the temperature profile with various back mirrors. The obtained plasma temperature through this method has good agreement with the operational temperature of the laser.


2020 ◽  
Vol 7 (2) ◽  
pp. 30-35
Author(s):  
Milada Bartlová ◽  
Petr Kloc ◽  
Vladimír Aubrecht ◽  
Nadezda Bogatyreva

This paper deals with the evaluation of radiation properties of air arc plasma with various admixtures of Cu, Ag, and Fe, respectively. Under assumption of isothermal plasma cylinder, the net emission coefficients were calculated for various arc radii as a function of the plasma temperature up to 30000K. For plasma with prescribed temperature profile, the equation of radiation transfer was solved in the P1approximation, and the radiation flux and its divergence were calculated.


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