Studies of solar magnetic fields. III - The east-west orientation of field lines
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Engineering topics
Publications and source records attributed to Howard, R..
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Magnetic flux data from the Mount Wilson magnetograph are examined over the interval 1967-1973. The total flux in the north is greater than that in the south by about 7% over this interval, reflecting a higher level of activity in the northern hemisphere. Close to 95% of the total flux is confined to latitudes equatorward of 40 degrees, which means that close to 95% of the flux cancels with flux of opposite polarity before it can migrate poleward of 40 degrees. It is pointed out that a consequence of this flux distribution is that ephemeral regions must make a negligible contribution to the long-term large-scale magnetic flux distribution. A broad peak in the total flux may be seen centered about one year after activity maximum in the north below 40 degrees. In the south there is a very sharp increase in flux about the same time. In the north, several poleward migrations of flux may be seen.
The large-scale photospheric magnetic field has been computed by allowing observed active region fields to diffuse and to be sheared by differential rotation in accordance with the Leighton (1969) magnetokinematic model of the solar cycle. The differential rotation of the computed field patterns as determined by autocorrelation curves is similar to that of the observed photospheric field, and poleward of 20 deg latitude both are significantly different from the differential rotation of the long-lived sunspots (Newton and Nunn, 1951) used as an input into the computations.
The large-scale phototospheric magnetic field was computed by allowing observed active region fields to diffuse and to be sheared by differential rotation in accordance with the Leighton (1969) magneto-kinematic model of the solar cycle. The differential rotation of the computed field patterns as determined by autocorrelation curves is similar to that of the observed photospheric field, and poleward of 20 deg. latitude both are significantly different from the differential rotation of the long-lived sunspots (Newton and Nunn, 1951) used as an input into the computations.
Investigation of the nature of the apparent downward flow of matter over plages indicated by Doppler shifts observed in photospheric spectral lines. From further line-shift observations in two spectral lines, it is determined that the downward motions observed over plages may represent a real downward transport of material, and not a merely apparent downward flow due to brightness or ionization differences in a multistream velocity model.
Large-scale averages of daily solar magnetograms have been compared by cross-correlation with the interplanetary magnetic sector pattern during a 2.5 yr interval. A significant correlation was found at a lag of about 4.5 days, with the amplitude of the correlation depending on the area included in the magnetogram averages. The highest correlation was found when an area of one quarter of the solar disk was used, which is consistent with the idea that the photospheric features which are to be associated with the interplanetary sector pattern are large scale features.
Knowledge on the nature of magnetic fields on the solar surface is reviewed. At least a large part of the magnetic flux in the solar surface is confined to small bundles of lines of force within which the field strength is of the order of 500 gauss. Magnetic fields are closely associated with all types of solar activity. Magnetic flux appears at the surface at the clearly defined birth or regeneration of activity of an active region. As the region ages, the magnetic flux migrates to form large-scale patterns and the polar fields. Some manifestations of the large-scale distribution are discussed.
Evidence for the existence of 5 min oscillations in the photospheric and low chromospheric magnetic fields is presented, their properties discussed, and a possible production mechanism suggested. It is pointed out that, because the solar magnetic field is frozen into the oscillating plasma, there are several ways in which the oscillations in the plasma (which are observed as velocity oscillations) could be transferred to the magnetic field. It is shown schematically how vertical waves could cause oscillations in a horizontal magnetic field, and how horizontal waves could cause oscillations in a vertical magnetic field.
Photospheric magnetic field direction autocorrelation showing differential and rigid rotation properties at various heliographic latitudes
Existance of 5 minute oscillations in solar photospheric and low chromospheric magnetic fields
Photospheric magnetic field differential rotation using synoptic charts for autocorrelation technique
One dimensional magnetograph scans studying photospheric velocity oscillations and supergranulation, noting downward flows coincident with chromospheric network
One dimensional magnetograph scans for photospheric velocity oscillations and supergranulation
Large scale pattern in solar magnetic field correlated with interplanetary magnetic field
Magnetograph observation of photospheric brightness, velocity and magnetic fields
Interpolated pattern of interplanetary magnetic field compared with photospheric magnetic field during sunspot cycle minimum revealing persistent pattern in solar field
Solar magnetograph observation of photospheric brightness, velocity, and magnetic fields
Solar chromospheric structure noting network pattern of absorption in He 10830 angstrom region