Bibcode
Eff-Darwich, A.; Korzennik, S. G.
Bibliographical reference
Journal of Physics: Conference Series, Volume 271, Issue 1, pp. 012078 (2011).
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1
2011
Citations
0
Refereed citations
0
Description
One salient result of global helioseismology is the mapping of the
so-called torsional oscillations below the solar surface. These
subsurface flows are inferred by inverting rotational frequency
splitting sets of global modes. These flows extend down to a depth of at
least 0.8 R, and are likely associated with the activity cycle of our
star. To better understand the mechanisms that drive the solar cycle we
need to accurately map these flows, and characterize precisely their
penetration depth and their temporal behavior.
We present a study of the spatial (depth and latitude) and temporal
variations of the solar rotation rate associated with the torsional
oscillation based on state-of-the-art mode fitting of time series of
various lengths of MDI observations, namely 1456-, 728-, 364- and
182-day long time series. Such approach allows us to better estimate how
much significant information can be extracted from the different time
spans and hence trade off time resolution for precision in the inverted
profiles resulting from the different mode sets.
Related projects
Helio and Astero-Seismology and Exoplanets Search
The principal objectives of this project are: 1) to study the structure and dynamics of the solar interior, 2) to extend this study to other stars, 3) to search for extrasolar planets using photometric methods (primarily by transits of their host stars) and their characterization (using radial velocity information) and 4) the study of the planetary
Savita
Mathur