Hostname: page-component-8448b6f56d-xtgtn Total loading time: 0 Render date: 2024-04-24T07:50:38.197Z Has data issue: false hasContentIssue false

On the origin of continuum and line emission in CTTSs

Published online by Cambridge University Press:  01 May 2007

S. A. Lamzin
Affiliation:
Sternberg Astronomical Institute, Universitetskij prospect 13, Moscow, 119991, Russia email: lamzin@sai.msu.ru, kravts@sai.msu.ru
M. M. Romanova
Affiliation:
Department of Astronomy, Cornell University, Ithaca, NY 14853-6801, USA email: romanova@astro.cornell.edu
A. S. Kravtsova
Affiliation:
Sternberg Astronomical Institute, Universitetskij prospect 13, Moscow, 119991, Russia email: lamzin@sai.msu.ru, kravts@sai.msu.ru
Rights & Permissions [Opens in a new window]

Abstract

Core share and HTML view are not available for this content. However, as you have access to this content, a full PDF is available via the ‘Save PDF’ action button.

We calculated profiles of CIV, 1550Å, Si IV 1400Å, NV 1240Å and OVI 1035Å doublet lines using results of 3D MHD simulations of disc accretion onto young stars with a dipole magnetic field. It appeared that our calculations cannot reproduce the profiles of these lines observed (HST/GHRS-STIS and FUSE) in CTTSs spectra. We also found that the theory predicts much larger CIV 1550Å line flux than observed (up to two orders of magnitude in some cases) and argue that the main portion of accretion energy in CTTSs is liberated outside the accretion shock. We conclude that the reason of disagreement between the theory and observation is the strongly non-dipolar character of CTTS magnetic field near its surface.

Type
Contributed Papers
Copyright
Copyright © International Astronomical Union 2007

References

Basri, G. & Bertout, C. 1989, ApJ 341, 340CrossRefGoogle Scholar
Calvet, N. & Gullbring, E. 1998, ApJ 509, 802CrossRefGoogle Scholar
Gómez de Castro, A.I. & Verdugo, E. 2001, ApJ 548, 976CrossRefGoogle Scholar
Gómez de Castro, A.I. & Verdugo, E. 2007, ApJ 654, 91CrossRefGoogle Scholar
Kravtsova, A.S. 2003, Astron. Lett. 29, 463CrossRefGoogle Scholar
Kravtsova, A.S., & Lamzin, S.A. 2002a, Astron. Lett. 28, 676CrossRefGoogle Scholar
Kravtsova, A.S., & Lamzin, S.A. 2002b, Astron. Lett. 28, 835CrossRefGoogle Scholar
Lamzin, S.A. 1995, A &A 295, L20Google Scholar
Lamzin, S.A. 1998, Astron. Rep. 42, 322Google Scholar
Lamzin, S.A. & Gomez de Castro, A.I. 1999, Astron. Lett. 24, 748Google Scholar
Lamzin, S.A. 2003a, Astron. Rep. 47, 498CrossRefGoogle Scholar
Lamzin, S.A. 2003b, Astron. Rep. 47, 540CrossRefGoogle Scholar
Lamzin, S.A., Kravtsova, A.S., Romanova, M.M., & Batalha, C. 2004, Astron. Lett. 30, 413CrossRefGoogle Scholar
Romanova, M.M., Ustyugova, G.V., Koldoba, A.V., Wick, J.V., & Lovelace, R.V.E. 2003, ApJ 595, 1009CrossRefGoogle Scholar