| dc.contributor.advisor |
Stelzer, Beate (Prof. Dr.) |
|
| dc.contributor.author |
Joseph, Wilhelmina Maryann |
|
| dc.date.accessioned |
2026-07-27T12:32:34Z |
|
| dc.date.available |
2026-07-27T12:32:34Z |
|
| dc.date.issued |
2026-07-27 |
|
| dc.identifier.uri |
http://hdl.handle.net/10900/181882 |
|
| dc.identifier.uri |
http://nbn-resolving.org/urn:nbn:de:bsz:21-dspace-1818823 |
de_DE |
| dc.description.abstract |
Understanding stellar coronae requires connecting the integrated X-ray emis-
sion I observe from unresolved stars to the physical magnetic structures pro-
ducing that emission. The Sun uniquely enables this connection: I can ob-
serve both its spatially resolved coronal structures and its integrated X-ray spec-
trum as it would appear from a stellar distance. This dissertation develops a
new implementation of the "Sun as an X-ray Star" (SaXS) methodology that di-
rectly retrieves the surface coverage (filling factors) of different coronal region
types—background corona, active regions, cores, and flares—from X-ray spec-
tral fitting.
I construct spectral models for XSPEC from emission measure distributions
derived from Yohkoh observations of solar coronal regions. Each region type
becomes a multi-temperature model with fixed temperature structure and free
normalization corresponding to its projected surface area. This direct fitting ap-
proach eliminates the computational overhead of synthetic spectral grids while
providing transparent physical interpretation: fitted normalizations immedi-
ately yield filling factors without intermediate parameter-space matching.
I validate the method on the Sun itself using full-disk soft X-ray spectra from
the DAXSS (Dual Aperture X-ray Solar Spectrometer) CubeSat instrument at
two activity levels. Comparing spectral-fit-derived filling factors with the actual
spatial distribution visible in contemporaneous Hinode/XRT images demon-
strates that the method successfully recovers known coronal structure. The qui-
escent Sun shows ∼21% active region coverage (with refined fits using variable abundances), while flaring periods show ∼15% active region coverage,
∼3% core coverage, and ∼0.07% flare coverage (with refined fits using variable
abundances and non-equilibrium ionization for flares). Spectral filling factors
systematically exceed image-based measurements because spectra naturally in-
clude limb emission extending to coronal scale heights, providing a more com-
plete picture of total coronal output as seen from stellar distances.
Application to AD Leo, a nearby active M3.5V dwarf, reveals both capa-
bilities and limitations of solar-derived templates. During quiescent periods,
the corona appears dominated by hot cores with significant background but
minimal active region contribution, suggesting either fundamentally different
magnetic structures or templates that incompletely capture stellar active re-
gions. The star exhibits continuous low-level flaring even in nominally qui-
escent phases. The spectacular November 2021 "November 2021 Great Flare"
(GOES X1445 equivalent) produces systematic high-energy residuals: even our
hottest solar flare template (X9.0, ∼30 MK) cannot reproduce emission above
2–3 keV. Adding thermal components reaching several tens of MK eliminates
residuals, demonstrating that AD Leo’s superflares produce plasma significantly
hotter than any solar analog.
This analysis reveals a fundamental degeneracy in X-ray spectral analysis:
for fixed emission measure, electron density and filling factor trade off (EM ∝
n2
e f ). Initial density estimates from literature extrapolation yielded unphysi-
cally small filling factors, requiring iterative density refinement constrained by
the requirement that regions occupy at least one coronal loop’s projected area.
Breaking this degeneracy definitively requires independent density measure-
ments from high-resolution spectroscopy, underscoring the importance of com-
plementary observations for future applications.
The dissertation establishes that solar-derived spectral models can charac-
terize stellar coronae in terms of physical magnetic structures, validates the
filling factor retrieval methodology through direct comparison with spatially
resolved solar observations, and identifies critical limitations—particularly the
need for expanded emission measure libraries extending to super-solar temper-
atures and independent density constraints—that must be addressed for robust
application to active stellar populations. |
en |
| dc.language.iso |
en |
de_DE |
| dc.publisher |
Universität Tübingen |
de_DE |
| dc.rights |
ubt-podno |
de_DE |
| dc.rights.uri |
http://tobias-lib.uni-tuebingen.de/doku/lic_ohne_pod.php?la=de |
de_DE |
| dc.rights.uri |
http://tobias-lib.uni-tuebingen.de/doku/lic_ohne_pod.php?la=en |
en |
| dc.subject.classification |
Sonnenaktivität , Sternaktivität , Röntgenspektroskopie |
de_DE |
| dc.subject.ddc |
000 |
de_DE |
| dc.subject.ddc |
520 |
de_DE |
| dc.subject.ddc |
530 |
de_DE |
| dc.subject.other |
Solar activity |
en |
| dc.subject.other |
Coronal activity |
en |
| dc.subject.other |
M dwarfs |
en |
| dc.subject.other |
Stellar activity |
en |
| dc.subject.other |
X-ray spectroscopy |
en |
| dc.title |
The Sun as an X-ray Star: Spectral Models of Solar Coronal Regions and Their Application to Stellar Coronae |
en |
| dc.type |
PhDThesis |
de_DE |
| dcterms.dateAccepted |
2026-05-08 |
|
| utue.publikation.fachbereich |
Astronomie |
de_DE |
| utue.publikation.fakultaet |
7 Mathematisch-Naturwissenschaftliche Fakultät |
de_DE |
| utue.publikation.noppn |
yes |
de_DE |