A mechanism for the dependence of sunspot group tilt angles on cycle strength
arXiv:1510.04323 · doi:10.1088/2041-8205/813/1/L13
Abstract
The average tilt angle of sunspot groups emerging throughout the solar cycle determines the net magnetic flux crossing the equator, which is correlated with the strength of the subsequent cycle. I suggest that a deep-seated, non-local process can account for the observed cycle-dependent changes in the average tilt angle. Motivated by helioseismic observations indicating cycle-scale variations in the sound speed near the base of the convection zone, I determined the effect of a thermally perturbed overshoot region on the stability of flux tubes and on the tilt angles of emerging flux loops. I found that 5-20 K of cooling is sufficient for emerging flux loops to reproduce the reported amplitude of cycle-averaged tilt angle variations, suggesting that it is a plausible effect responsible for the nonlinearity of the solar activity cycle.
5 pages, 4 figures, 1 table - published on 26 October 2015
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Cited by in corpus (8)
- Solar cycle prediction
- Solar Cycle Variability Induced by Tilt Angle Scatter in a Babcock--Leighton Solar Dynamo Model
- Magnetic field dependence of bipolar magnetic region tilts on the Sun: Indication of tilt quenching
- Sunspot tilt angles revisited: Dependence on the solar cycle strength
- An update of Leighton's solar dynamo model
- Inflows towards active regions and the modulation of the solar cycle: a parameter study
- Low-latitude magnetic flux emergence on rapidly rotating solar-type stars
- Thermomagnetic Ettingshausen-Nernst effect in tachocline, magnetic reconnection phenomenon in lower layers, axion mechanism of solar luminosity variations, coronal heating problem solution and mechanism of ADM variations around BH