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Self-similar evolution of the nonlinear magnetic buoyancy instabilityA new type of self-similar solution of ideal magnetohydrodynamics (MHD) in the nonlinear stage of the undular model (k parallel to B) of the magnetic buoyancy instability (the ballooning instability in fusion plasma physics or the Parker instability in astrophysics) is found through MHD simulation and theory. The linear theory developed agrees well with the simulation in the early (linear) stage. The nonlinear stages of the instability in the simulation show the self-similar evolution. One of the solutions obtained from the nonlinear analysis has the characteristics of nonlinear instability in Lagrangian coordinates; the fluid velocity and the Alfven speed on each magnetic loop increase exponentially with time, because the loop is evacuated by the field-aligned motion of matter resulting from gravitational acceleration. In the later stage of the nonlinear evolution, the solution property changes from exponential to power-law time dependence. The latter corresponds to a force-free expansion solution. The later saturation of the velocity increment is also discussed.
Document ID
19900061622
Acquisition Source
Legacy CDMS
Document Type
Reprint (Version printed in journal)
External Source(s)
Authors
Shibata, K.
(Texas Univ. Austin, TX, United States)
Tajima, T.
(Texas, University Austin, United States)
Matsumoto, R.
(Chiba University Japan)
Date Acquired
August 14, 2013
Publication Date
September 1, 1990
Publication Information
Publication: Physics of Fluids B
Volume: 2
ISSN: 0899-8221
Subject Category
Plasma Physics
Accession Number
90A48677
Distribution Limits
Public
Copyright
Other

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