DocumentCode
1635154
Title
Ponderomotive modification of the electron density distribution in the interaction of high power microwave field with a plasma
Author
Niknam, A.R. ; Shokri, B.
Author_Institution
Univ. Evin, Tehran
fYear
2007
Firstpage
1026
Lastpage
1026
Abstract
Summary form only given. Using the Maxwell and fluid equations and considering the high power microwave ponderomotive force acting on the plasma electrons, we investigate the interaction of a high power microwave fields with a underdense plasma. It is well-known that the nonlinear interaction of a high power microwave field in the wide range of phenomena is connected with the ponderomotive Miller force. In general, the ponderomotive force is characterized by a nonlinear (quadric) dependence on the amplitude of electric field oscillations. This force is also known as the gradient pondcromotive force i.e., it is proportional to the gradient of the wave intensity. Therefore, it is related to a spatial inhomogeneity of the wave field. We assume the electron density slightly less than the critical density, the MW energy flux around I cong 104 -108 W/ cm2, the electron temperature Te, cong 2eV and the microwave frequencies f = 2.45 - 10 GHz . Therefore, using the Maxwell´s equations and the balance between the ponderomotive force acting on the plasma electrons with the electrons pressure gradient force, we find the electron density distribution and the nonlinear differential equation for the electric field in the plasma. The solution of this equation shows that the profile of the field have nonsinusoidal shape. Also, the electron density profile shows that the electron density becomes highly steepened for the higher microwave energy flux and near the critical density.
Keywords
Maxwell equations; electron density; plasma density; plasma electromagnetic wave propagation; plasma temperature; Maxwell equation; electron density distribution; electron temperature; fluid equation; high power microwave field; high power microwave ponderomotive force; nonlinear differential equation; plasma electrons; ponderomotive Miller force; underdense plasma; Electrons; Laser theory; Masers; Maxwell equations; Microwave frequencies; Nonlinear equations; Nonuniform electric fields; Plasma density; Plasma temperature; Power lasers;
fLanguage
English
Publisher
ieee
Conference_Titel
Plasma Science, 2007. ICOPS 2007. IEEE 34th International Conference on
Conference_Location
Albuquerque, NM
ISSN
0730-9244
Print_ISBN
978-1-4244-0915-0
Type
conf
DOI
10.1109/PPPS.2007.4346332
Filename
4346332
Link To Document