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Dive into the research topics where G. Houdek is active.

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Featured researches published by G. Houdek.


Science | 1996

The current state of solar modeling

Jørgen Christensen-Dalsgaard; Werner Dappen; S. V. Ajukov; E. R. Anderson; H. M. Antia; Sarbani Basu; V. A. Baturin; G. Berthomieu; Brian Chaboyer; S. M. Chitre; A. N. Cox; Pierre Demarque; J. Donatowicz; W. A. Dziembowski; M. Gabriel; D. O. Gough; David B. Guenther; Joyce Ann Guzik; John Warren Harvey; Frank Hill; G. Houdek; C. A. Iglesias; Alexander G. Kosovichev; John W. Leibacher; P. Morel; C. R. Proffitt; J. Provost; Jerome P. Reiter; Edward J. Rhodes; F. J. Rogers

Data from the Global Oscillation Network Group (GONG) project and other helioseismic experiments provide a test for models of stellar interiors and for the thermodynamic and radiative properties, on which the models depend, of matter under the extreme conditions found in the sun. Current models are in agreement with the helioseismic inferences, which suggests, for example, that the disagreement between the predicted and observed fluxes of neutrinos from the sun is not caused by errors in the models. However, the GONG data reveal subtle errors in the models, such as an excess in sound speed just beneath the convection zone. These discrepancies indicate effects that have so far not been correctly accounted for; for example, it is plausible that the sound-speed differences reflect weak mixing in stellar interiors, of potential importance to the overall evolution of stars and ultimately to estimates of the age of the galaxy based on stellar evolution calculations.


Science | 2011

Ensemble asteroseismology of solar-type stars with the NASA Kepler mission.

W. J. Chaplin; Hans Kjeldsen; Jørgen Christensen-Dalsgaard; Sarbani Basu; A. Miglio; T. Appourchaux; Timothy R. Bedding; Y. Elsworth; R. A. García; R. L. Gilliland; Léo Girardi; G. Houdek; C. Karoff; S. D. Kawaler; T. S. Metcalfe; J. Molenda-Żakowicz; M. J. P. F. G. Monteiro; M. J. Thompson; G. A. Verner; J. Ballot; Alfio Bonanno; I. M. Brandão; Anne-Marie Broomhall; H. Bruntt; T. L. Campante; E. Corsaro; O. L. Creevey; G. Doğan; Lisa Esch; Ning Gai

Measurements of 500 Sun-like stars show that their properties differ from those predicted by stellar population models. In addition to its search for extrasolar planets, the NASA Kepler mission provides exquisite data on stellar oscillations. We report the detections of oscillations in 500 solar-type stars in the Kepler field of view, an ensemble that is large enough to allow statistical studies of intrinsic stellar properties (such as mass, radius, and age) and to test theories of stellar evolution. We find that the distribution of observed masses of these stars shows intriguing differences to predictions from models of synthetic stellar populations in the Galaxy.


Astrophysical Journal Supplement Series | 2013

Asteroseismic Fundamental Properties of Solar-type Stars Observed by the NASA Kepler Mission

W. J. Chaplin; Sarbani Basu; Daniel Huber; Aldo M. Serenelli; Luca Casagrande; V. Silva Aguirre; Warrick H. Ball; O. L. Creevey; Laurent Gizon; R. Handberg; C. Karoff; R. Lutz; J. P. Marques; A. Miglio; D. Stello; Marian Doru Suran; D. Pricopi; T. S. Metcalfe; M. J. P. F. G. Monteiro; J. Molenda-Żakowicz; T. Appourchaux; J. Christensen-Dalsgaard; Y. Elsworth; R. A. García; G. Houdek; Hans Kjeldsen; Alfio Bonanno; T. L. Campante; E. Corsaro; P. Gaulme

We use asteroseismic data obtained by the NASA Kepler mission to estimate the fundamental properties of more than 500 main-sequence and sub-giant stars. Data obtained during the first 10 months of Kepler science operations were used for this work, when these solar-type targets were observed for one month each in survey mode. Stellar properties have been estimated using two global asteroseismic parameters and complementary photometric and spectroscopic data. Homogeneous sets of effective temperatures, T eff, were available for the entire ensemble from complementary photometry; spectroscopic estimates of T eff and [Fe/H] were available from a homogeneous analysis of ground-based data on a subset of 87 stars. We adopt a grid-based analysis, coupling six pipeline codes to 11 stellar evolutionary grids. Through use of these different grid-pipeline combinations we allow implicitly for the impact on the results of stellar model dependencies from commonly used grids, and differences in adopted pipeline methodologies. By using just two global parameters as the seismic inputs we are able to perform a homogenous analysis of all solar-type stars in the asteroseismic cohort, including many targets for which it would not be possible to provide robust estimates of individual oscillation frequencies (due to a combination of low signal-to-noise ratio and short dataset lengths). The median final quoted uncertainties from consolidation of the grid-based analyses are for the full ensemble (spectroscopic subset) approximately 10.8% (5.4%) in mass, 4.4% (2.2%) in radius, 0.017 dex (0.010 dex) in log g, and 4.3% (2.8%) in mean density. Around 36% (57%) of the stars have final age uncertainties smaller than 1 Gyr. These ages will be useful for ensemble studies, but should be treated carefully on a star-by-star basis. Future analyses using individual oscillation frequencies will offer significant improvements on up to 150 stars, in particular for estimates of the ages, where having the individual frequency data is most important.


The Astrophysical Journal | 2010

Solar-like Oscillations in Low-luminosity Red Giants: First Results from Kepler

Timothy R. Bedding; Daniel Huber; D. Stello; Y. Elsworth; S. Hekker; T. Kallinger; S. Mathur; Benoit Mosser; H. L. Preston; J. Ballot; C. Barban; Anne-Marie Broomhall; Derek L. Buzasi; W. J. Chaplin; R. A. García; M. Gruberbauer; S. J. Hale; J. De Ridder; Soren Frandsen; William J. Borucki; Timothy M. Brown; Jørgen Christensen-Dalsgaard; Ronald L. Gilliland; Jon M. Jenkins; Hans Kjeldsen; David G. Koch; K. Belkacem; Lars Bildsten; H. Bruntt; T. L. Campante

We have measured solar-like oscillations in red giants using time-series photometry from the first 34 days of science operations of the Kepler Mission. The light curves, obtained with 30 minute sampling, reveal clear oscillations in a large sample of G and K giants, extending in luminosity from the red clump down to the bottom of the giant branch. We confirm a strong correlation between the large separation of the oscillations (Δν) and the frequency of maximum power (νmax). We focus on a sample of 50 low-luminosity stars (νmax > 100 μHz, L <~ 30 L sun) having high signal-to-noise ratios and showing the unambiguous signature of solar-like oscillations. These are H-shell-burning stars, whose oscillations should be valuable for testing models of stellar evolution and for constraining the star formation rate in the local disk. We use a new technique to compare stars on a single echelle diagram by scaling their frequencies and find well-defined ridges corresponding to radial and non-radial oscillations, including clear evidence for modes with angular degree l = 3. Measuring the small separation between l = 0 and l = 2 allows us to plot the so-called C-D diagram of δν02 versus Δν. The small separation δν01 of l = 1 from the midpoint of adjacent l = 0 modes is negative, contrary to the Sun and solar-type stars. The ridge for l = 1 is notably broadened, which we attribute to mixed modes, confirming theoretical predictions for low-luminosity giants. Overall, the results demonstrate the tremendous potential of Kepler data for asteroseismology of red giants.


The Astrophysical Journal | 2009

Radius Determination of Solar-type Stars Using Asteroseismology: What to Expect from the Kepler Mission

D. Stello; W. J. Chaplin; H. Bruntt; O. L. Creevey; Antonio García-Hernández; M. J. P. F. G. Monteiro; Andrés Moya; P.-O. Quirion; S. G. Sousa; Juan-Carlos Suárez; T. Appourchaux; T. Arentoft; J. Ballot; Timothy R. Bedding; Jørgen Christensen-Dalsgaard; Y. Elsworth; Stephen Fletcher; R. A. García; G. Houdek; Sebastian J. Jimenez-Reyes; Hans Kjeldsen; R. New; C. Regulo; D. Salabert; Thierry Toutain

For distant stars, as observed by the NASA Kepler satellite, parallax information is currently of fairly low quality and is not complete. This limits the precision with which the absolute sizes of the stars and their potential transiting planets can be determined by traditional methods. Asteroseismology will be used to aid the radius determination of stars observed during NASA’s Kepler mission. We report on the recent asteroFLAG hare-and-hounds Exercise#2, where a group of “hares” simulated data of F–K main-sequence stars that a group of “hounds” sought to analyze, aimed at determining the stellar radii. We investigated stars in the range 9 <V <15, both with and without parallaxes. We further test different uncertainties in Teff, and compare results with and without using asteroseismic constraints. Based on the asteroseismic large frequency spacing, obtained from simulations of 4 yr time series data from the Kepler mission, we demonstrate that the stellar radii can be correctly and precisely determined, when combined with traditional stellar parameters from the Kepler Input Catalogue. The radii found by the various methods used by each independent hound generally agree with the true values of the artificial stars to within 3%, when the large frequency spacing is used. This is 5–10 times better than the results where seismology is not applied. These results give strong confidence that radius estimation can be performed to better than 3% for solar-like stars using automatic pipeline reduction. Even when the stellar distance and luminosity are unknown we can obtain the same level of agreement. Given the uncertainties used for this exercise we find that the input log g and parallax do not help to constrain the radius, and that Teff and metallicity are the only parameters we need in addition to the large frequency spacing. It is the uncertainty in the metallicity that dominates the uncertainty in the radius.


The Astrophysical Journal | 2012

Kepler-21b: A 1.6 R Earth Planet Transiting the Bright Oscillating F Subgiant Star HD?179070

Steve B. Howell; Jason F. Rowe; Stephen T. Bryson; Samuel N. Quinn; Geoffrey W. Marcy; Howard Isaacson; David R. Ciardi; W. J. Chaplin; T. S. Metcalfe; M. J. P. F. G. Monteiro; T. Appourchaux; Sarbani Basu; O. L. Creevey; Ronald L. Gilliland; P.-O. Quirion; Denis Stello; Hans Kjeldsen; Jørgen Christensen-Dalsgaard; Y. Elsworth; R. A. García; G. Houdek; C. Karoff; J. Molenda-Żakowicz; M. J. Thompson; G. A. Verner; Guillermo Torres; Francois Fressin; Justin R. Crepp; Elisabeth R. Adams; Andrea K. Dupree

We present Kepler observations of the bright (V = 8.3), oscillating star HD 179070. The observations show transit-like events which reveal that the star is orbited every 2.8 days by a small, 1.6 R Earth object. Seismic studies of HD 179070 using short cadence Kepler observations show that HD 179070 has a frequency-power spectrum consistent with solar-like oscillations that are acoustic p-modes. Asteroseismic analysis provides robust values for the mass and radius of HD 179070, 1.34 ± 0.06 M ☉ and 1.86 ± 0.04 R ☉, respectively, as well as yielding an age of 2.84 ± 0.34 Gyr for this F5 subgiant. Together with ground-based follow-up observations, analysis of the Kepler light curves and image data, and blend scenario models, we conservatively show at the >99.7% confidence level (3σ) that the transit event is caused by a 1.64 ± 0.04 R Earth exoplanet in a 2.785755 ± 0.000032 day orbit. The exoplanet is only 0.04 AU away from the star and our spectroscopic observations provide an upper limit to its mass of ~10 M Earth (2σ). HD 179070 is the brightest exoplanet host star yet discovered by Kepler.


The Astrophysical Journal | 2011

Predicting the detectability of oscillations in solar-type stars observed by Kepler

W. J. Chaplin; Hans Kjeldsen; Timothy R. Bedding; Jørgen Christensen-Dalsgaard; R. L. Gilliland; S. D. Kawaler; T. Appourchaux; Y. Elsworth; R. A. García; G. Houdek; C. Karoff; T. S. Metcalfe; J. Molenda-Żakowicz; M. J. P. F. G. Monteiro; M. J. Thompson; G. A. Verner; Natalie M. Batalha; William J. Borucki; Timothy M. Brown; Steve Bryson; Jessie L. Christiansen; Bruce D. Clarke; J. M. Jenkins; Todd C. Klaus; David G. Koch; Deokkeun An; J. Ballot; Sarbani Basu; O. Benomar; Alfio Bonanno

Asteroseismology of solar-type stars has an important part to play in the exoplanet program of the NASA Kepler Mission. Precise and accurate inferences on the stellar properties that are made possible by the seismic data allow very tight constraints to be placed on the exoplanetary systems. Here, we outline how to make an estimate of the detectability of solar-like oscillations in any given Kepler target, using rough estimates of the temperature and radius, and the Kepler apparent magnitude.


The Astrophysical Journal | 2011

Evidence for the impact of stellar activity on the detectability of solar-like oscillations observed by Kepler

W. J. Chaplin; Timothy R. Bedding; Alfio Bonanno; Anne-Marie Broomhall; R. A. García; S. Hekker; D. Huber; G. A. Verner; Sarbani Basu; Y. Elsworth; G. Houdek; S. Mathur; B. Mosser; R. New; Ian R. Stevens; T. Appourchaux; C. Karoff; T. S. Metcalfe; J. Molenda-Żakowicz; M. J. P. F. G. Monteiro; M. J. Thompson; Jørgen Christensen-Dalsgaard; R. L. Gilliland; S. D. Kawaler; Hans Kjeldsen; J. Ballot; O. Benomar; E. Corsaro; T. L. Campante; P. Gaulme

We use photometric observations of solar-type stars, made by the NASA Kepler Mission, to conduct a statistical study of the impact of stellar surface activity on the detectability of solar-like oscillations. We find that the number of stars with detected oscillations falls significantly with increasing levels of activity. The results present strong evidence for the impact of magnetic activity on the properties of near-surface convection in the stars, which appears to inhibit the amplitudes of the stochastically excited, intrinsically damped solar-like oscillations.


The Astronomy and Astrophysics Review | 2010

The quest for the solar g modes

T. Appourchaux; K. Belkacem; Anne-Marie Broomhall; W. J. Chaplin; D. O. Gough; G. Houdek; J. Provost; F. Baudin; P. Boumier; Y. Elsworth; R. A. García; Bo Nyborg Andersen; W. Finsterle; Claus Frohlich; A. H. Gabriel; G. Grec; A. Jiménez; Alexander G. Kosovichev; T. Sekii; T. Toutain; Sylvaine Turck-Chieze

Solar gravity modes (or g modes)—oscillations of the solar interior on which buoyancy acts as the restoring force—have the potential to provide unprecedented inference on the structure and dynamics of the solar core, inference that is not possible with the well-observed acoustic modes (or p modes). The relative high amplitude of the g-mode eigenfunctions in the core and the evanesence of the modes in the convection zone make the modes particularly sensitive to the physical and dynamical conditions in the core. Owing to the existence of the convection zone, the g modes have very low amplitudes at photospheric levels, which makes the modes extremely hard to detect. In this article, we review the current state of play regarding attempts to detect g modes. We review the theory of g modes, including theoretical estimation of the g-mode frequencies, amplitudes and damping rates. Then we go on to discuss the techniques that have been used to try to detect g modes. We review results in the literature, and finish by looking to the future, and the potential advances that can be made—from both data and data-analysis perspectives—to give unambiguous detections of individual g modes. The review ends by concluding that, at the time of writing, there is indeed a consensus amongst the authors that there is currently no undisputed detection of solar g modes.


The Astrophysical Journal | 2011

SOLAR-LIKE OSCILLATIONS IN KIC 11395018 AND KIC 11234888 FROM 8 MONTHS OF KEPLER DATA

S. Mathur; R. Handberg; T. L. Campante; R. A. García; T. Appourchaux; Timothy R. Bedding; B. Mosser; W. J. Chaplin; J. Ballot; O. Benomar; Alfio Bonanno; E. Corsaro; P. Gaulme; S. Hekker; C. Regulo; D. Salabert; G. A. Verner; T. R. White; I. M. Brandão; O. L. Creevey; G. Doğan; Y. Elsworth; D. Huber; S. J. Hale; G. Houdek; C. Karoff; T. S. Metcalfe; Joanna Molenda-Zakowicz; M. J. P. F. G. Monteiro; M. J. Thompson

We analyze the photometric short-cadence data obtained with the Kepler mission during the first 8 months of observations of two solar-type stars of spectral types G and F: KIC 11395018 and KIC 11234888, respectively, the latter having a lower signal-to-noise ratio (S/N) compared with the former. We estimate global parameters of the acoustic (p) modes such as the average large and small frequency separations, the frequency of the maximum of the p-mode envelope, and the average line width of the acoustic modes. We were able to identify and to measure 22 p-mode frequencies for the first star and 16 for the second one even though the S/N of these stars are rather low. We also derive some information about the stellar rotation periods from the analyses of the low-frequency parts of the power spectral densities. A model-independent estimation of the mean density, mass, and radius is obtained using the scaling laws. We emphasize the importance of continued observations for the stars with low S/N for an improved characterization of the oscillation modes. Our results offer a preview of what will be possible for many stars with the long data sets obtained during the remainder of the mission.

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W. J. Chaplin

University of Birmingham

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R. A. García

Centre national de la recherche scientifique

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Y. Elsworth

University of Birmingham

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D. O. Gough

University of Cambridge

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