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Stellar Midlife Crises: Challenges and Advances in Simulating Convection and Differential Rotation in Sun-like Stars

  • Nicholas J Nelson
  • , Charles Payne
  • , Cameron Michael Sorensen

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

Low mass, main sequence stars like our Sun exhibit a wide variety of rotational and magnetic states. Observational and theoretical advances have led to a renewed emphasis on understanding the rotational and magnetic evolution of sun-like stars has become a pressing problem in stellar physics. We use global 3D convection and convective dynamo simulations in rotating spherical shells and with realistic stellar stratification to explore the behavior of “middle-aged” stars. We show that for stars with slightly less rotational influence than our Sun a transition occurs from solar-like (fast equator, slow poles) to anti-solar (slow equator, fast poles) differential rotation. We investigate this transition using two different treatments for the upper boundary of our simulations and we hypothesize that this transition from solar-like to anti-solar differential rotation may be responsible for observations of anomalously rapid rotation for stars older than our Sun.
Original languageAmerican English
Title of host publicationProceedings of the International Astronomical Union
Subtitle of host publicationVolume 12 Symposium S328: Living Around Active Sta.
DOIs
StatePublished - Sep 12 2017
Externally publishedYes

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