Published 1987 | Version v1
Report

Magnetohydrodynamic (MHD) simulation of solar prominence formation

Description

Formation of Kippenhahn-Schluter type solar prominences by chromospheric mass injection is studied via numerical simulation. The numerical model is based on a two-dimensional, time-dependent magnetohydrodynamic (MHD) theory. In addition, an analysis of gravitational thermal MHD instabilities related to condensation is performed by using the small-perturbation method. The conclusions are: (1) Both quiescent and active-region prominences can be formed by chromospheric mass injection, provided certain optimum conditions are satisfied. (2) Quiescent prominences cannot be formed without condensation, though enough mass is supplied from chromosphere. The mass of a quiescent prominence is composed of both the mass injected from the chromosphere and the mass condensed from the corona. On the other hand, condensation is not important to active region prominence formation. (3) In addition to channeling and supporting effects, the magnetic field plays another important role, i.e. containing the prominence material. (4) In the model cases, prominences are supported by the Lorentz force, the gas-pressure gradient and the mass-injection momentum. (5) Due to gravity, more MHD condensation instability modes appear in addition to the basic condensation mode

Availability note (English)

University Microfilms Order No. 87-24,337.

Additional details

Publishing Information

Imprint Pagination
217 p.

INIS

Country of Publication
United States
Country of Input or Organization
United States
INIS RN
20000807
Subject category
S79: ASTROPHYSICS, COSMOLOGY AND ASTRONOMY; S30: DIRECT ENERGY CONVERSION;
Resource subtype / Literary indicator
Thesis, Non-conventional Literature
Descriptors DEI
CHROMOSPHERE; LORENTZ FORCE; MAGNETIC FIELDS; MAGNETOHYDRODYNAMICS; MASS TRANSFER; PRODUCTION; SIMULATION; SOLAR PROMINENCES; VAPOR CONDENSATION
Descriptors DEC
ATMOSPHERES; FLUID MECHANICS; HYDRODYNAMICS; MECHANICS; SOLAR ACTIVITY; SOLAR ATMOSPHERE; STELLAR ATMOSPHERES