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A Two-Fluid, MHD Coronal ModelWe describe first results from a numerical two-fluid MHD model of the global structure of the solar corona. The model is two-fluid in the sense that it accounts for the collisional energy exchange between protons and electrons. As in our single-fluid model, volumetric heat and momentum sources are required to produce high speed wind from coronal holes, low speed wind above streamers, and mass fluxes similar to the empirical solar wind. By specifying different proton and electron heating functions we obtain a high proton temperature in the coronal hole and a relatively low proton temperature in the streamer (in comparison with the electron temperature). This is consistent with inferences from SOHO/UVCS, and with the Ulysses/SWOOPS proton and electron temperature measurements which we show from the fast latitude scan. The density in the coronal hole between 2 solar radii and 5 solar radii (2RS and 5RS) is similar to the density reported from SPARTAN 201-01 measurements by Fisher and Guhathakurta. The proton mass flux scaled to 1 AU is 2.4 x 10(exp 8)/sq cm s, which is consistent with Ulysses observations. Inside the closed field region, the density is sufficiently high so that the simulation gives equal proton and electron temperatures due to the high collision rate. In open field regions (in the coronal hole and above the streamer) the proton and electron temperatures differ by varying amounts. In the streamer, the temperature and density are similar to those reported empirically by Li et al and the plasma beta is larger than unity everywhere above approx. 1.5 R(sub s), as it is in all other MHD coronal streamer models.
Document ID
19980210401
Acquisition Source
Headquarters
Document Type
Preprint (Draft being sent to journal)
Authors
Suess, Steven T.
(NASA Marshall Space Flight Center Huntsville, AL United States)
Wang, A.-H.
(Alabama Univ. Huntsville, AL United States)
Wu, S. T.
(Alabama Univ. Huntsville, AL United States)
Poletto, G.
(Osservatorio Astrofisico di Arcetri Florence, Italy)
McComas, D. J.
(Los Alamos National Lab. NM United States)
Date Acquired
September 6, 2013
Publication Date
January 1, 1998
Subject Category
Solar Physics
Report/Patent Number
NASA/CR-1997-208263
NAS 1.26:208263
Report Number: NASA/CR-1997-208263
Report Number: NAS 1.26:208263
Funding Number(s)
CONTRACT_GRANT: NSF ATM-96-33629
CONTRACT_GRANT: NAGw-4665
CONTRACT_GRANT: N00014-C-95-2058
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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