Multiwavelength light curve parameters of Cepheid variables

We present a comparative analysis of theoretical and observed light curves of Cepheid variables using Fourier decomposition. The theoretical light curves at multiple wavelengths are generated using stellar pulsation models for chemical compositions representative of Cepheids in the Galaxy and Magell...

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Main Authors: Bhardwaj Anupam, Kanbur Shashi M., Marconi Marcella, Rejkuba Marina, Singh Harinder P., Ngeow Chow-Choong
Format: Article
Language:English
Published: EDP Sciences 2017-01-01
Series:EPJ Web of Conferences
Online Access:https://doi.org/10.1051/epjconf/201715201010
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spelling doaj-4fde2de080c24e2c92f3008604c04e342021-08-02T07:00:24ZengEDP SciencesEPJ Web of Conferences2100-014X2017-01-011520101010.1051/epjconf/201715201010epjconf_puls2017_01010Multiwavelength light curve parameters of Cepheid variablesBhardwaj AnupamKanbur Shashi M.0Marconi Marcella1Rejkuba Marina2Singh Harinder P.3Ngeow Chow-Choong4State University of New YorkINAF-Osservatorio astronomico di CapodimonteEuropean Southern Observatory, Karl-Schwarzschild-Straße 2Department of Physics & Astrophysics, University of DelhiGraduate Institute of Astronomy, National Central UniversityWe present a comparative analysis of theoretical and observed light curves of Cepheid variables using Fourier decomposition. The theoretical light curves at multiple wavelengths are generated using stellar pulsation models for chemical compositions representative of Cepheids in the Galaxy and Magellanic Clouds. The observed light curves at optical (VI), near-infrared (JHKs) and mid-infrared (3.6 & 4.5-μm) bands are compiled from the literature. We discuss the variation of light curve parameters as a function of period, wavelength and metallicity. Theoretical and observed Fourier amplitude parameters decrease with increase in wavelength while the phase parameters increase with wavelength. We find that theoretical amplitude parameters obtained using canonical mass-luminosity levels exhibit a greater offset with respect to observations when compared to non-canonical relations. We also discuss the impact of variation in convective efficiency on the light curve structure of Cepheid variables. The increase in mixing length parameter results in a zero-point offset in bolometric mean magnitudes and reduces the systematic large difference in theoretical amplitudes with respect to observations.https://doi.org/10.1051/epjconf/201715201010
collection DOAJ
language English
format Article
sources DOAJ
author Bhardwaj Anupam
Kanbur Shashi M.
Marconi Marcella
Rejkuba Marina
Singh Harinder P.
Ngeow Chow-Choong
spellingShingle Bhardwaj Anupam
Kanbur Shashi M.
Marconi Marcella
Rejkuba Marina
Singh Harinder P.
Ngeow Chow-Choong
Multiwavelength light curve parameters of Cepheid variables
EPJ Web of Conferences
author_facet Bhardwaj Anupam
Kanbur Shashi M.
Marconi Marcella
Rejkuba Marina
Singh Harinder P.
Ngeow Chow-Choong
author_sort Bhardwaj Anupam
title Multiwavelength light curve parameters of Cepheid variables
title_short Multiwavelength light curve parameters of Cepheid variables
title_full Multiwavelength light curve parameters of Cepheid variables
title_fullStr Multiwavelength light curve parameters of Cepheid variables
title_full_unstemmed Multiwavelength light curve parameters of Cepheid variables
title_sort multiwavelength light curve parameters of cepheid variables
publisher EDP Sciences
series EPJ Web of Conferences
issn 2100-014X
publishDate 2017-01-01
description We present a comparative analysis of theoretical and observed light curves of Cepheid variables using Fourier decomposition. The theoretical light curves at multiple wavelengths are generated using stellar pulsation models for chemical compositions representative of Cepheids in the Galaxy and Magellanic Clouds. The observed light curves at optical (VI), near-infrared (JHKs) and mid-infrared (3.6 & 4.5-μm) bands are compiled from the literature. We discuss the variation of light curve parameters as a function of period, wavelength and metallicity. Theoretical and observed Fourier amplitude parameters decrease with increase in wavelength while the phase parameters increase with wavelength. We find that theoretical amplitude parameters obtained using canonical mass-luminosity levels exhibit a greater offset with respect to observations when compared to non-canonical relations. We also discuss the impact of variation in convective efficiency on the light curve structure of Cepheid variables. The increase in mixing length parameter results in a zero-point offset in bolometric mean magnitudes and reduces the systematic large difference in theoretical amplitudes with respect to observations.
url https://doi.org/10.1051/epjconf/201715201010
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