Asterospheric magnetic fields and winds of cool stars

被引:38
|
作者
Schrijver, CJ [1 ]
DeRosa, ML [1 ]
Title, AM [1 ]
机构
[1] Lockheed martin Adv Technol Ctr, Palo Alto, CA 94304 USA
来源
ASTROPHYSICAL JOURNAL | 2003年 / 590卷 / 01期
关键词
interplanetary medium; solar wind; stars : activity; stars : late-type; stars : magnetic fields; stars; winds; outflows;
D O I
10.1086/374982
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
This study addresses the winds and magnetic fields in the inner asterospheres of Sun-like magnetically active stars by combining empirical relationships between rotation rate and mass loss, angular-momentum loss, and radiative losses with models of the magnetic fields at the surfaces of cool stars and in their inner asterospheres based on the solar example. Our models, for mean magnetic flux densities up to 10 times solar, suggest that the asterospheric fields of such stars are dominated by the large-scale dipole component of the surface field, as is the case for the Sun. Hence, most of the time a single current sheet is expected to separate domains of opposite magnetic polarity; the current sheets of more active stars generally have smaller latitudinal ripples. Magnetic braking requires that the total unsigned asterospheric magnetic flux increase linearly with the stellar angular velocity, which is a very much weaker increase than seen for the flux at the stellar surface. We show that this can be achieved by an increase in the radial distance at which the coronal field is forced open as surface activity increases. Combined with measured mass-loss rates and the assumption that the wind velocity is largely independent of activity, this requires the wind's Alfven radius to be nearly constant, decreasing with surface activity with a power of only -0.16 +/- 0.13. We point out that the surface flux density of energy needed to drive a cool-star wind scales linearly with the unsigned surface magnetic flux density, as does that needed to heat the corona.
引用
收藏
页码:493 / 501
页数:9
相关论文
共 50 条
  • [21] Magnetic properties of three cool CP stars with strong fields
    Semenko, E. A.
    Kichigina, L. A.
    Kuchaeva, E. Yu.
    ASTRONOMISCHE NACHRICHTEN, 2011, 332 (9-10) : 948 - 955
  • [22] NEW INFRARED MEASUREMENTS OF MAGNETIC-FIELDS ON COOL STARS
    SAAR, SH
    INFRARED SOLAR PHYSICS, 1994, (154): : 493 - 497
  • [23] The IUE legacy: Chromospheres and winds in cool stars
    Dupree, AK
    ULTRAVIOLET ASTROPHYSICS BEYOND THE IUE FINAL ARCHIVE, 1998, 413 : 75 - 82
  • [24] Winds of cool giant stars:: Models and observations
    Höfner, S
    PROCEEDINGS OF THE 13TH CAMBRIDGE WORKSHOP ON COOL STARS, STELLAR SYSTEMS AND THE SUN - PROCEEDINGS, VOLS 1 AND 2, 2005, 560 : 335 - 342
  • [25] Magnetic fields of cool giant and supergiant stars: models versus observations
    Korhonen, H.
    CONTRIBUTIONS OF THE ASTRONOMICAL OBSERVATORY SKALNATE PLESO, 2018, 48 (01): : 180 - 186
  • [26] Alfven wave driven winds in cool supergiant stars
    Vidotto, AA
    Jatenco-Pereira, V
    Proceedings of the 13th Cambridge Workshop on Cool Stars, Stellar Systems and the Sun - Proceedings, Vols 1 and 2, 2005, 560 : 1009 - 1012
  • [27] Determination of magnetic fields in the winds from hot stars using the Hanle effect
    Cassinelli, JP
    Nordsieck, KH
    Ignace, R
    MAGNETIC FIELDS ACROSS THE HERTZSPRUNG-RUSSELL DIAGRAM, 2001, 248 : 409 - 414
  • [28] MAGNETIC ACTIVITY IN COOL STARS
    SCHRIJVER, CJ
    SPACE SCIENCE REVIEWS, 1985, 40 (1-2) : 3 - 24
  • [29] Magnetic topologies of cool stars
    Donati, J. -F.
    Jardine, M. M.
    Petit, P.
    Morin, J.
    Bouvier, J.
    Cameron, A. C.
    Delfosse, X.
    Dintrans, B.
    Dobler, W.
    Dougados, C.
    Ferreira, J.
    Forveille, T.
    Gregory, S. C.
    Harries, T.
    Hussain, G. A. J.
    Menard, F.
    Paletou, F.
    14TH CAMBRIDGE WORKSHOP ON COOL STARS, STELLAR SYSTEMS, AND THE SUN, 2008, 384 : 156 - +
  • [30] Rydberg States of Atoms and Molecules in the Atmospheres of Very Cool Stars with Magnetic Fields
    Gnedin, Yu. N.
    Piotrovich, M. Yu.
    Klyucharev, A. N.
    PHYSICS AND EVOLUTION OF MAGNETIC AND RELATED STARS, 2015, 494 : 261 - 272