English

Double-peaks of the solar cycle: An explanation from a dynamo model

Solar and Stellar Astrophysics 2018-10-11 v1 Earth and Planetary Astrophysics Instrumentation and Methods for Astrophysics

Abstract

One peculiar feature of the solar cycle which is yet to be understood properly is the frequent occurrence of double peaks (also known as the Gnevyshev peaks). Not only the double peaks but also multiple peaks and spikes are often observed in any phase of the cycle. We propose that these peaks and spikes are generated due to fluctuations in the Babcock-Leighton process (the poloidal field generation from tilted bipolar magnetic regions). When the polar field develops, large negative fluctuations in the Babcock-Leighton process can reduce the net polar field abruptly. As these fluctuations in the polar field are propagated to the new toroidal field, these can promote double peaks in the next solar cycle. When fluctuations in the polar field occur outside the solar maximum, we observe their effects as spikes or dips in the following sunspot cycle. Using an axisymmetric Babcock-Leighton dynamo model we first demonstrate this idea. Later, we perform a long simulation by including random scatter in the poloidal field generation process and successfully reproduce the double-peaked solar cycles. These results are robust under reasonable changes in the model parameters as long as the diffusivity is not too larger than 101210^{12} cm2^2s1^{-1}. Finally, we analyze the observed polar field data to show a close connection between the short-term fluctuations in the polar field and the double peaks/spikes in the next cycle. Thereby, this supports our theoretical idea that the fluctuations in the Babcock-Leighton process can be responsible for the double peaks/spikes in the observed solar cycle.

Keywords

Cite

@article{arxiv.1808.03922,
  title  = {Double-peaks of the solar cycle: An explanation from a dynamo model},
  author = {Bidya Binay Karak and Sudip Mandal and Dipankar Banerjee},
  journal= {arXiv preprint arXiv:1808.03922},
  year   = {2018}
}

Comments

12 pages including 5 figures. Accepted in ApJ