Published March 1986 | Version v1
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Effects of pressure anisotropy on plasma transport

Description

In a recent paper a new set of generalized two-field equations is derived which describes plasma transport along the field lines of a space and time dependent magnetic field. These equations are valid for collisional to weakly collisional plasmas; they reduce to the conventional fluid equations of Braginskii for highly collisional plasmas. An important feature of these equations is that the anisotropy in the ion pressure is explicitly included. In this paper, these generalized transport equations are applied to a model problem of plasma flow through a magnetic mirror field. The profiles of the plasma parameters (density, flow speed, and pressures) are numerically calculated for plasma in different collisionality regimes. These profiles are explained by examining the competing terms in the transport equation. The pressure anisotropy is found to profoundly impact the plasma flow behavior. As a result, the new generalized equations predict flow behavior more accurately than the conventional transport equations. A large density and pressure drop is predicted as the flow passes through a magnetic mirror. Further, the new equations uniquely predict oscillations in the density profile, an effect missing in results from the conventional equations

Availability note (English)

MF available from INIS under the Report Number; Available from NTIS, PC A03/MF A01 as DE86010613.

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Additional details

Publishing Information

Imprint Pagination
44 p.
Report number
UCLA/PPG--949

INIS

Country of Publication
United States
Country of Input or Organization
United States
INIS RN
18000446
Subject category
S70: PLASMA PHYSICS AND FUSION TECHNOLOGY;
Descriptors DEI
ANISOTROPY; COLLISIONAL PLASMA; DIFFERENTIAL EQUATIONS; MAGNETIC FIELD CONFIGURATIONS; PLASMA DRIFT; PLASMA PRESSURE
Descriptors DEC
EQUATIONS; PLASMA