Connections between the cycle-to-cycle light curve and O-C variations of the non-Blazhko RR Lyrae stars

Fuente: arXiv
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Autores principales: Benkő, J. M., Bódi, A., Plachy, E., Molnár, L.
Formato: Preprint
Publicado: 2025
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author Benkő, J. M.
Bódi, A.
Plachy, E.
Molnár, L.
author_facet Benkő, J. M.
Bódi, A.
Plachy, E.
Molnár, L.
contents It has long been known that if the durations of the consecutive cycles of a pulsating star vary randomly, the O-C diagram could show quasi-periodic/irregular variations, even though the actual average period is constant. It is hypothesised that the period variation observed in many RR Lyrae stars, which are much faster and stronger than may be explained by an evolutionary origin, may in fact be caused by this cycle-to-cycle (C2C) variation effect. So far, quantitative studies have not really been performed, and space data have not been used at all. Our primary goal was to quantitatively analyse the O$-$C diagrams of RR Lyrae stars obtained from space photometry and explained by quasi-periodic or irregular periodic variations to see if they can be explained by random fluctuations in pulsation cycle length without assuming real period variations. We fitted statistical models to the O-C diagrams and tested their validity and fit. The necessary analysis of the light curves was performed using standard Fourier methods. We found that the vast majority of the O-C curves can be satisfactorily explained by assuming timing noise and the C2C variation without a real mean period variation. We have shown that the strength of the C2C variation is strongly dependent on the pulsation period and metallicity. These correlations suggests that turbulent convection may be behind the C2C variation. The additional frequencies of some RR Lyrae stars and their variation over time play only a marginal role in O-Cs. We have found new arguments that the phase jump phenomenon in RRc stars is in fact a continuous change, moreover, it could also be caused by the C2C variation.
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id arxiv_https___arxiv_org_abs_2503_19579
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Connections between the cycle-to-cycle light curve and O-C variations of the non-Blazhko RR Lyrae stars
Benkő, J. M.
Bódi, A.
Plachy, E.
Molnár, L.
Solar and Stellar Astrophysics
It has long been known that if the durations of the consecutive cycles of a pulsating star vary randomly, the O-C diagram could show quasi-periodic/irregular variations, even though the actual average period is constant. It is hypothesised that the period variation observed in many RR Lyrae stars, which are much faster and stronger than may be explained by an evolutionary origin, may in fact be caused by this cycle-to-cycle (C2C) variation effect. So far, quantitative studies have not really been performed, and space data have not been used at all. Our primary goal was to quantitatively analyse the O$-$C diagrams of RR Lyrae stars obtained from space photometry and explained by quasi-periodic or irregular periodic variations to see if they can be explained by random fluctuations in pulsation cycle length without assuming real period variations. We fitted statistical models to the O-C diagrams and tested their validity and fit. The necessary analysis of the light curves was performed using standard Fourier methods. We found that the vast majority of the O-C curves can be satisfactorily explained by assuming timing noise and the C2C variation without a real mean period variation. We have shown that the strength of the C2C variation is strongly dependent on the pulsation period and metallicity. These correlations suggests that turbulent convection may be behind the C2C variation. The additional frequencies of some RR Lyrae stars and their variation over time play only a marginal role in O-Cs. We have found new arguments that the phase jump phenomenon in RRc stars is in fact a continuous change, moreover, it could also be caused by the C2C variation.
title Connections between the cycle-to-cycle light curve and O-C variations of the non-Blazhko RR Lyrae stars
topic Solar and Stellar Astrophysics
url https://arxiv.org/abs/2503.19579