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Magnetohydrodynamic modeling of the global solar corona

Physics of Plasmas · 1999 · Vol. 6(5) · pp. 2217–2224
Z. MikićJ. A. LinkerDalton D. SchnackR. LionelloAlfonso G. Tarditi

Abstract

A three-dimensional magnetohydrodynamic model of the global solar corona is described. The model uses observed photospheric magnetic fields as a boundary condition. A version of the model with a polytropic energy equation is used to interpret solar observations, including eclipse images of the corona, Ulysses spacecraft measurements of the interplanetary magnetic field, and coronal hole boundaries from Kitt Peak He 10 830 Å maps and extreme ultraviolet images from the Solar Heliospheric Observatory. Observed magnetic fields are used as a boundary condition to model the evolution of the solar corona during the period February 1997–March 1998. A model with an improved energy equation and Alfvén waves that is better able to model the solar wind is also presented.

Solar and Space Plasma DynamicsGeomagnetism and Paleomagnetism StudiesStellar, planetary, and galactic studiesPhysicsCorona (planetary geology)Solar windNanoflaresInterplanetary magnetic fieldMagnetohydrodynamic driveCoronal holeAstrophysicsPolytropic processCoronal mass ejection
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Magnetohydrodynamic modeling of the global solar corona · Scinovex