HR: 08:00h
AN: SH51C-01 INVITED [Abstracts]
TI: Understanding Eruptive Phenomena in the Hinode Era
AU: * Linker, J A
EM: linkerj@saic.com
AF: Science Applications International Corporation, 10260 Campus Point Drive, San Diego, CA
92121, United States
AU: Lionello, R
EM: Roberto.Lionello@saic.com
AF: Science Applications International Corporation, 10260 Campus Point Drive, San Diego, CA
92121, United States
AU: Mikic, Z
EM: mikicz@saic.com
AF: Science Applications International Corporation, 10260 Campus Point Drive, San Diego, CA
92121, United States
AU: Riley, P
EM: pete.riley@saic.com
AF: Science Applications International Corporation, 10260 Campus Point Drive, San Diego, CA
92121, United States
AU: Titov, V
EM: VIACHESLAV.S.TITOV@saic.com
AF: Science Applications International Corporation, 10260 Campus Point Drive, San Diego, CA
92121, United States
AB:
The magnetohydrodynamic (MHD) equations are frequently used to investigate coronal mass ejections, eruptive
prominences, and solar flares. A key goal
of such studies is to deduce how energy stored in the magnetic field is suddenly released to drive these
phenomena, for which the proposed mechanism(s) is (are) still under vigorous debate. Because most MHD
models use relatively simple energy equations, the discussion often centers on the interpretation and
comparison of magnetic field evolution in the models with corresponding features observed in emission.
With new capabilities to study X-ray and EUV emission from Hinode, as well as complementary observations
from STEREO and SOHO, it now becomes imperative that models advance to more quantitative comparisons
with emission measurements. We have developed MHD models that include energy transport (radiative losses,
anisotropic thermal conduction, and coronal heating) in the transition region and solar corona. This more
accurate representation of energy flow allows us to compute simulated EUV and X-ray emission and compare
directly with observations. In this talk we will show examples of this modeling approach for specific events and
describe the magnetic field evolution associated with commonly observed emission features such as dimming
regions and postflare loops.
Work supported by NASA, NSF and the Center for Integrated Space Weather Modeling (an NSF Science and
Technology Center).
DE: 7509 Corona
DE: 7513 Coronal mass ejections (2101)
DE: 7524 Magnetic fields
DE: 7531 Prominence eruptions
SC: SPA-Solar and Heliospheric Physics [SH]
MN: 2007 Fall Meeting