Magnetic fields in non-convective regions of stars

被引:57
|
作者
Braithwaite, Jonathan [1 ]
Spruit, Henk C. [2 ]
机构
[1] Univ Bonn, Argelander Inst Astron, Hugel 71, D-53121 Bonn, Germany
[2] Max Planck Inst Astrophys, Karl Schwarzschild Str 1, D-85741 Garching, Germany
来源
ROYAL SOCIETY OPEN SCIENCE | 2017年 / 4卷 / 02期
关键词
stars: magnetic fields; stars: neutron; magnetohydrodynamics; RESOLUTION SPECTROPOLARIMETRIC SURVEY; ACTIVITY-ROTATION RELATIONSHIP; CHEMICALLY PECULIAR STARS; HERBIG AE/BE STARS; A-TYPE STARS; DIFFERENTIAL ROTATION; MAIN-SEQUENCE; ADIABATIC STABILITY; MASSIVE STARS; WHITE-DWARFS;
D O I
10.1098/rsos.160271
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
We review the current state of knowledge of magnetic fields inside stars, concentrating on recent developments concerning magnetic fields in stably stratified (zones of) stars, leaving out convective dynamo theories and observations of convective envelopes. We include the observational properties of A, B and O-type main-sequence stars, which have radiative envelopes, and the fossil field model which is normally invoked to explain the strong fields sometimes seen in these stars. Observations seem to show that Ap-type stable fields are excluded in stars with convective envelopes. Most stars contain both radiative and convective zones, and there are potentially important effects arising from the interaction of magnetic fields at the boundaries between them; the solar cycle being one of the better known examples. Related to this, we discuss whether the Sun could harbour a magnetic field in its core. Recent developments regarding the various convective and radiative layers near the surfaces of early-type stars and their observational effects are examined. We look at possible dynamo mechanisms that run on differential rotation rather than convection. Finally, we turn to neutron stars with a discussion of the possible origins for their magnetic fields.
引用
收藏
页数:45
相关论文
共 50 条
  • [1] Structure of magnetic fields in non-convective stars
    Lyutikov, Maxim
    [J]. MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 2010, 402 (01) : 345 - 352
  • [2] Convective and non-convective mixing in AGB stars
    Herwig, Falk
    Freytag, Bernd
    Fuchs, Tyler
    Hansen, James P.
    Hueckstaedt, Robert M.
    Porter, David H.
    Timmes, Francis X.
    Woodward, Paul R.
    [J]. WHY GALAXIES CARE ABOUT AGB STARS: THEIR IMPORTANCE AS ACTORS AND PROBES, 2007, 378 : 43 - +
  • [3] Gps dropsonde observations of the wind structure in convective-and non-convective regions of the hurricane eyewall
    Black, ML
    Franklin, JL
    [J]. 24TH CONFERENCE ON HURRICANES AND TROPICAL METEOROLOGY/10TH CONFERENCE ON INTERACTION OF THE SEA AND ATMOSPHERE, 2000, : 448 - 449
  • [4] HE-3(+) IN GALACTIC-H-II REGIONS - POSSIBLE EVIDENCE FOR NON-CONVECTIVE MIXING IN LOW MASS STARS
    ROOD, RT
    BANIA, TM
    WILSON, TL
    [J]. IAU SYMPOSIA, 1984, (105): : 567 - 570
  • [5] NON-CONVECTIVE CYCLOTRON RESONANCE INSTABILITIES
    CORDEY, JG
    [J]. PHYSICS LETTERS, 1966, 23 (03): : 228 - &
  • [6] NOTE ON THE NON-CONVECTIVE PLASMA BUNCHING IN PULSARS
    GIL, J
    [J]. ACTA PHYSICA POLONICA B, 1983, 14 (01): : 71 - 71
  • [7] ANALYSIS OF VERIFICATION PARAMETERS FOR NON-CONVECTIVE SIGMETS
    WILLIAMS, RM
    [J]. THIRD INTERNATIONAL CONFERENCE ON THE AVIATION WEATHER SYSTEM, 1988, : 270 - 273
  • [8] NON-CONVECTIVE INSTABILITIES OF RING CURRENT PROTONS
    WANDZURA, S
    CORONITI, FV
    GREGORY, C
    [J]. TRANSACTIONS-AMERICAN GEOPHYSICAL UNION, 1973, 54 (04): : 425 - &
  • [9] NON-CONVECTIVE AND CONVECTIVE ELECTRON-CYCLOTRON HARMONIC INSTABILITIES
    ASHOURABDALLA, M
    KENNEL, CF
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-SPACE PHYSICS, 1978, 83 (NA4): : 1531 - 1543
  • [10] Convective and non-convective wind gusts in Poland, 2001-2015
    Kolendowicz, Leszek
    Taszarek, Mateusz
    Czernecki, Bartosz
    [J]. METEOROLOGY HYDROLOGY AND WATER MANAGEMENT-RESEARCH AND OPERATIONAL APPLICATIONS, 2016, 4 (02): : 15 - 21