Meridional motions of magnetic features in the solar photosphere

被引:83
作者
Snodgrass, HB
Dailey, SB
机构
[1] Physics Department, Lewis and Clark College, Portland
[2] Department of Computer Science, University of Wisconsin, Madison, WI
关键词
D O I
10.1007/BF00165454
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
We cross-correlate pairs of Mi. Wilson magnetograms spaced at intervals of 24-38 days to investigate the meridional motions of small magnetic features in the photosphere. Our study spans the 26-yr period July 1967-August 1993, and the correlations determine longitude averages of these motions, as functions of latitude and time. The time-average of our results over the entire 26-yr period is, as expected, antisymmetric about the equator. It is poleward between similar to 10 degrees and similar to 60 degrees, with a maximum rate of 13 m s(-1), but for latitudes below +/-10 degrees it is markedly equatorward, and it is weakly equatorward for latitudes above 60 degrees. A running 1-yr average shows that this complex latitude dependence of the long-term time average comes from a pattern of motions that changes dramatically during the course of the activity cycle. At low latitudes the motion is equatorward during the active phase of the cycle. It tends to increase as the zones of activity move toward the equator, but it reverses briefly to become poleward at solar minimum. On the poleward sides of the activity zones the motion is most strongly poleward when the activity is greatest. At high latitudes, where the results are more uncertain, the motion seems to be equatorward except around the times of polar field reversal. The difference-from-average meridional motions pattern is remarkably similar to the pattern of the magnetic rotation torsional oscillations. The correspondence is such that the zones in which the difference-from-average motion is poleward are the zones where the magnetic rotation is slower than average, and the zones in which it is equatorward are the zones where the rotation is faster. Our results suggest the following characterization: there is a constant and generally prevailing motion which is perhaps everywhere poleward and varies smoothly with latitude. On this is superimposed a cycle-dependent pattern of similar amplitude in which the meridional motions of the small magnetic features are directed away from regions of magnetic flux concentration. This is suggestive of simple diffusion, and of the models of Leighton (1964) and Sheeley, Nash, and Wang (1987). The correspondence between the meridional motions pattern and the torsional oscillations pattern in the magnetic rotation suggests that the latter may be an artifact of the combination of meridional motion and differential rotation.
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页码:21 / 42
页数:22
相关论文
共 39 条
[31]   SPECTROSCOPIC EVIDENCE FOR A MOVING PATTERN OF AZIMUTHAL ROLLS ON THE SUN [J].
SNODGRASS, HB .
ASTROPHYSICAL JOURNAL, 1987, 316 (02) :L91-L94
[32]   SOLAR TORSIONAL OSCILLATIONS AS A SIGNATURE OF GIANT-CELLS [J].
SNODGRASS, HB ;
WILSON, PR .
NATURE, 1987, 328 (6132) :696-699
[33]   TORSIONAL OSCILLATIONS AND THE SOLAR-CYCLE [J].
SNODGRASS, HB .
SOLAR PHYSICS, 1987, 110 (01) :35-49
[34]  
SNODGRASS HB, 1991, ASTROPHYS J, V383, pL485
[35]  
STENFLO JO, 1992, SOLAR CYCLE ASP C SE, V27, P421
[36]   SUNSPOTS - THEIR ROTATION, THEIR EXPANSION IN THE ACTIVITY ZONE, THEIR LINKS WITH THE GIANT CONVECTIVE CELLS [J].
TERNULLO, M .
SOLAR PHYSICS, 1990, 127 (01) :29-50
[37]   SOLAR ROTATION MEASUREMENTS AT MOUNT-WILSON .5. REANALYSIS OF 21 YEARS OF DATA [J].
ULRICH, RK ;
BOYDEN, JE ;
WEBSTER, L ;
SNODGRASS, HB ;
PADILLA, SP ;
GILMAN, P ;
SHIEBER, T .
SOLAR PHYSICS, 1988, 117 (02) :291-328
[38]   THE EXTENDED SOLAR-ACTIVITY CYCLE [J].
WILSON, PR ;
ALTROCK, RC ;
HARVEY, KL ;
MARTIN, SF ;
SNODGRASS, HB .
NATURE, 1988, 333 (6175) :748-750
[39]   THE REVERSAL OF THE SOLAR POLAR MAGNETIC-FIELDS .1. THE SURFACE TRANSPORT OF MAGNETIC-FLUX [J].
WILSON, PR ;
MCINTOSH, PS ;
SNODGRASS, HB .
SOLAR PHYSICS, 1990, 127 (01) :1-9