Linear waves and stability in ideal magnetohydrodynamics
Description
Linear waves superimposed on an arbitrary basic state in ideal magnetohydrodynamics are studied by an asymptotic expansion valid for short wavelenghts. The theory allows for a gravitational potential, and it may therefore be applied both in astrophysics and in problems related to thermonuclear fusion. The linearized equations for the perturbations of the basic state are found in the form of a symmetric hyperbolic system. This symmetric hyperbolic system is shown to possess characteristics of nonuniform multiplicity, which implies that waves of different types may interact. In particular it is shown that the mass waves, the Alf-n waves, and the slow magnetoacoustic waves will persistently interact in the exceptional case where the local wave number vector is perpendicular to the magnetic field. The equations describing this interaction are found in the form of a weakly coupled hyperbolic system. This weakly coupled hyperbloc system is studied in a number of special cases, and detailed analytic results are obtained for some such cases. The results show that the interaction of the waves may be one of the major causes of instability of the basic state. It seems beyond doubt that the interacting waves contain the physically relevant parts of the waves, which often are referred to as ballooning modes, including Suydam modes and Mercier modes
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Additional details
Publishing Information
- Imprint Pagination
- 70 p.
- Report number
- BUM--84
INIS
- Country of Publication
- Norway
- Country of Input or Organization
- Norway
- INIS RN
- 19038050
- Subject category
- S30: DIRECT ENERGY CONVERSION;
- Descriptors DEI
- ALFVEN WAVES; INSTABILITY; MAGNETOACOUSTIC WAVES; MAGNETOHYDRODYNAMICS; MERCIER CRITERION; MHD EQUILIBRIUM; PLASMA WAVES; SUYDAM CRITERION; WAVE PROPAGATION
- Descriptors DEC
- EQUILIBRIUM; FLUID MECHANICS; HYDRODYNAMICS; HYDROMAGNETIC WAVES; MECHANICS
Optional Information
- Notes
- 19 refs.