Published 1983 | Version v1
Miscellaneous Open

Electronic cyclotron radiation amplification in thermonuclear plasmas

Description

The amplified emission of electron cyclotron radiation near the fundamental frequency from an inhomogeneous, anisotropic plasma slab is investigated in a linear theory. Plasma polarization effects are consistently included. Expressions are developed in the WKB approximation for emission in the ordinary and the extraordinary modes, for propagation perpendicular to the magnetic field. Numerical results are given for the extraordinary mode, for which effects are strongest. For the case of a loss-cone-type electron momentum distribution, it is shown that the amplification is sensitively dependent on the ratio of parallel-to-perpendicular temperature and on inhomogeneities in the magnetic field. The dependence of the amplification on the distribution is further investigated by considering superpositions of loss-cone and Maxwellian components. It is show that the presence of a Maxwellian component in general reduces the emission relative to the pure loss-cone case, and situations occur in which a layer in the slab very effectively absorbs all the radiation amplified elsewhere. A peculiar behaviour of the refractive index, which occurs in the transition from the pure loss-cone to the pure Maxwellian case, is discussed. (author)

Availability note (English)

MF available from INIS under the Report Number.

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Additional details

Additional titles

Original title (Portuguese)
Amplificacao de radiacao de ciclotron eletronica em plasmas termonucleares

Publishing Information

Imprint Pagination
115 p.
Report number
INIS-BR--3335

INIS

Country of Publication
Brazil
Country of Input or Organization
Brazil
INIS RN
25042430
Subject category
S70: PLASMA PHYSICS AND FUSION TECHNOLOGY;
Resource subtype / Literary indicator
Thesis
Descriptors DEI
CYCLOTRON FREQUENCY; CYCLOTRON RADIATION; LOSS CONE; LOSS CONE INSTABILITY; PLASMA; PLASMA DIAGNOSTICS; PLASMA INSTABILITY; POLARIZATION
Descriptors DEC
BREMSSTRAHLUNG; ELECTROMAGNETIC RADIATION; INSTABILITY; PLASMA MICROINSTABILITIES; RADIATIONS