2017
DOI: 10.1051/0004-6361/201730900
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Spatially resolved spectroscopy across stellar surfaces

Abstract: Context. High-precision stellar analyses require hydrodynamic modeling to interpret chemical abundances or oscillation modes. Exoplanet atmosphere studies require stellar background spectra to be known along the transit path while detection of Earth analogs require stellar microvariability to be understood. Hydrodynamic 3D models can be computed for widely different stars but have been tested in detail only for the Sun with its resolved surface features. Model predictions include spectral line shapes, asymmetr… Show more

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Cited by 30 publications
(25 citation statements)
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“…Hence, it is necessary to separate and to measure accurately each component to retrieve the unknown parameters. The present figure is partially inspired by figures in Dravins et al (2015Dravins et al ( , 2017; Dumusque et al (2014); Cegla et al (2016); Bourrier et al (2017a). Bourrier et al 2017aBourrier et al , 2018:…”
Section: On the Extraction Of A Transmission Spectrummentioning
confidence: 85%
“…Hence, it is necessary to separate and to measure accurately each component to retrieve the unknown parameters. The present figure is partially inspired by figures in Dravins et al (2015Dravins et al ( , 2017; Dumusque et al (2014); Cegla et al (2016); Bourrier et al (2017a). Bourrier et al 2017aBourrier et al , 2018:…”
Section: On the Extraction Of A Transmission Spectrummentioning
confidence: 85%
“…However, direct comparisons between theory and spectral-line observations have in the past only been possible for the spatially resolved Sun (e.g., Lind et al 2017). In Paper I (Dravins et al 2017), we examined theoretically predicted spatially resolved signatures for a group of main-sequence stellar models with temperatures between 6730 and 3960 K. Corresponding observations are feasible during exoplanet transits when small stellar surface portions successively become hidden, and differential spectroscopy between different transit phases can provide spectra of small surface segments temporarily hidden behind the planet. The observational requirements were elaborated in Paper I, in which observable parameters were predicted quantitatively.…”
Section: Spatially Resolved Stellar Spectramentioning
confidence: 99%
“…http://keplergo.arc.nasa.gov/Instrumentation.shtml 3 Observations of transiting exoplanets, though, offer a promising probe of stellar photospheres that can shed light on this problem (e.g.,Dravins et al 2017aDravins et al ,b, 2018Rackham et al 2017;Espinoza et al 2019). …”
mentioning
confidence: 99%