Flip-flops of FK Comae Berenices

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Flip-flops of FK Comae Berenices. / Hackman, T.; Pelt, J.; Mantere, M. J.; Jetsu, L.; Korhonen, Heidi Helena; Granzer, T.; Kajatkari, P.; Lehtinen, J.; Strassmeier, K. G.

In: Astronomy & Astrophysics, Vol. 553, A40, 01.01.2013.

Research output: Contribution to journalJournal articleResearchpeer-review

Harvard

Hackman, T, Pelt, J, Mantere, MJ, Jetsu, L, Korhonen, HH, Granzer, T, Kajatkari, P, Lehtinen, J & Strassmeier, KG 2013, 'Flip-flops of FK Comae Berenices', Astronomy & Astrophysics, vol. 553, A40. https://doi.org/10.1051/0004-6361/201220690

APA

Hackman, T., Pelt, J., Mantere, M. J., Jetsu, L., Korhonen, H. H., Granzer, T., Kajatkari, P., Lehtinen, J., & Strassmeier, K. G. (2013). Flip-flops of FK Comae Berenices. Astronomy & Astrophysics, 553, [A40]. https://doi.org/10.1051/0004-6361/201220690

Vancouver

Hackman T, Pelt J, Mantere MJ, Jetsu L, Korhonen HH, Granzer T et al. Flip-flops of FK Comae Berenices. Astronomy & Astrophysics. 2013 Jan 1;553. A40. https://doi.org/10.1051/0004-6361/201220690

Author

Hackman, T. ; Pelt, J. ; Mantere, M. J. ; Jetsu, L. ; Korhonen, Heidi Helena ; Granzer, T. ; Kajatkari, P. ; Lehtinen, J. ; Strassmeier, K. G. / Flip-flops of FK Comae Berenices. In: Astronomy & Astrophysics. 2013 ; Vol. 553.

Bibtex

@article{8464abfc000a4ee5a4c95ebc13229d93,
title = "Flip-flops of FK Comae Berenices",
abstract = "Context.FK Comae Berenices is a rapidly rotating magnetically active star, the light curve of which is modulated by cool spots on its surface. It was the first star where the {"}flip-flop{"} phenomenon was discovered. Since then, flip-flops in the spot activity have been reported in many other stars. Follow-up studies with increasing length have shown, however, that the phenomenon is more complex than was thought right after its discovery. Aims. Therefore, it is of interest to perform a more thorough study of the evolution of the spot activity in FK Com. In this study, we analyse 15 years of photometric observations with two different time series analysis methods, with a special emphasis on detecting flip-flop type events from the data. Methods. We apply the continuous period search and carrier fit methods on long-term standard Johnson-Cousins V-observations from the years 1995-2010. The observations were carried out with two automated photometric telescopes, Phoenix-10 and Amadeus T7 located in Arizona. Results. We identify complex phase behaviour in 6 of the 15 analysed data segments. We identify five flip-flop events and two cases of phase jumps, where the phase shift is ¿f <0.4. In addition we see two mergers of spot regions and two cases where the apparent phase shifts are caused by spot regions drifting with respect to each other. Furthermore we detect variations in the rotation period corresponding to a differential rotation coefficient of |k| > 0.031. Conclusions. The flip-flop cannot be interpreted as a single phenomenon, where the main activity jumps from one active longitude to another. In some of our cases the phase shifts can be explained by differential rotation: two spot regions move with different angular velocity and even pass each other. Comparison between the methods show that the carrier fit utility is better in retrieving slow evolution especially from a low amplitude light curve, while the continuous period search is more sensitive in case of rapid changes.",
author = "T. Hackman and J. Pelt and Mantere, {M. J.} and L. Jetsu and Korhonen, {Heidi Helena} and T. Granzer and P. Kajatkari and J. Lehtinen and Strassmeier, {K. G.}",
year = "2013",
month = jan,
day = "1",
doi = "10.1051/0004-6361/201220690",
language = "English",
volume = "553",
journal = "Astronomy & Astrophysics",
issn = "0004-6361",
publisher = "E D P Sciences",

}

RIS

TY - JOUR

T1 - Flip-flops of FK Comae Berenices

AU - Hackman, T.

AU - Pelt, J.

AU - Mantere, M. J.

AU - Jetsu, L.

AU - Korhonen, Heidi Helena

AU - Granzer, T.

AU - Kajatkari, P.

AU - Lehtinen, J.

AU - Strassmeier, K. G.

PY - 2013/1/1

Y1 - 2013/1/1

N2 - Context.FK Comae Berenices is a rapidly rotating magnetically active star, the light curve of which is modulated by cool spots on its surface. It was the first star where the "flip-flop" phenomenon was discovered. Since then, flip-flops in the spot activity have been reported in many other stars. Follow-up studies with increasing length have shown, however, that the phenomenon is more complex than was thought right after its discovery. Aims. Therefore, it is of interest to perform a more thorough study of the evolution of the spot activity in FK Com. In this study, we analyse 15 years of photometric observations with two different time series analysis methods, with a special emphasis on detecting flip-flop type events from the data. Methods. We apply the continuous period search and carrier fit methods on long-term standard Johnson-Cousins V-observations from the years 1995-2010. The observations were carried out with two automated photometric telescopes, Phoenix-10 and Amadeus T7 located in Arizona. Results. We identify complex phase behaviour in 6 of the 15 analysed data segments. We identify five flip-flop events and two cases of phase jumps, where the phase shift is ¿f <0.4. In addition we see two mergers of spot regions and two cases where the apparent phase shifts are caused by spot regions drifting with respect to each other. Furthermore we detect variations in the rotation period corresponding to a differential rotation coefficient of |k| > 0.031. Conclusions. The flip-flop cannot be interpreted as a single phenomenon, where the main activity jumps from one active longitude to another. In some of our cases the phase shifts can be explained by differential rotation: two spot regions move with different angular velocity and even pass each other. Comparison between the methods show that the carrier fit utility is better in retrieving slow evolution especially from a low amplitude light curve, while the continuous period search is more sensitive in case of rapid changes.

AB - Context.FK Comae Berenices is a rapidly rotating magnetically active star, the light curve of which is modulated by cool spots on its surface. It was the first star where the "flip-flop" phenomenon was discovered. Since then, flip-flops in the spot activity have been reported in many other stars. Follow-up studies with increasing length have shown, however, that the phenomenon is more complex than was thought right after its discovery. Aims. Therefore, it is of interest to perform a more thorough study of the evolution of the spot activity in FK Com. In this study, we analyse 15 years of photometric observations with two different time series analysis methods, with a special emphasis on detecting flip-flop type events from the data. Methods. We apply the continuous period search and carrier fit methods on long-term standard Johnson-Cousins V-observations from the years 1995-2010. The observations were carried out with two automated photometric telescopes, Phoenix-10 and Amadeus T7 located in Arizona. Results. We identify complex phase behaviour in 6 of the 15 analysed data segments. We identify five flip-flop events and two cases of phase jumps, where the phase shift is ¿f <0.4. In addition we see two mergers of spot regions and two cases where the apparent phase shifts are caused by spot regions drifting with respect to each other. Furthermore we detect variations in the rotation period corresponding to a differential rotation coefficient of |k| > 0.031. Conclusions. The flip-flop cannot be interpreted as a single phenomenon, where the main activity jumps from one active longitude to another. In some of our cases the phase shifts can be explained by differential rotation: two spot regions move with different angular velocity and even pass each other. Comparison between the methods show that the carrier fit utility is better in retrieving slow evolution especially from a low amplitude light curve, while the continuous period search is more sensitive in case of rapid changes.

UR - http://www.scopus.com/inward/record.url?scp=84876898806&partnerID=8YFLogxK

U2 - 10.1051/0004-6361/201220690

DO - 10.1051/0004-6361/201220690

M3 - Journal article

AN - SCOPUS:84876898806

VL - 553

JO - Astronomy & Astrophysics

JF - Astronomy & Astrophysics

SN - 0004-6361

M1 - A40

ER -

ID: 45712610