Planets forming around young stars can get dragged inward and swallowed whole, or heated and bloated by the star’s gravitational pull. This project tackles two linked problems in astrophysics: how the swirling discs of gas and dust around young stars behave, and how the magnetic fields inside Sun-like stars generate their activity. The researchers will model the turbulence, magnetic fields, and transport processes inside these discs to understand the environment in which planets are born. They will then study how that environment drives planets to migrate inward, and develop a new theory of tidal forces to explain why some planets end up dangerously close to their star. On the stellar side, they will use observations from the Hinode spacecraft to track how magnetic flux emerges on the Sun’s surface, and build better models of the solar tachocline—a critical layer where the Sun’s magnetic field is thought to be generated. This is fundamental science. It will not produce a practical application tomorrow, but understanding how stars and planetary systems evolve is essential for interpreting the thousands of exoplanets now being discovered, and for placing our own Solar System in context.
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This is a proposal to investigate a number of phenomena: The first is astrophysical discs. These objects are common, being found in close binary systems, active galactic nuclei, and around newly formed stars. There they provide the environment for planet formation. We propose in depth studies of these objects to establish the physical conditions that apply, for instance the degree of turbulence, the magnetic field strength, the amount of anomalous transport and whether the discs remain circular. We then intend to investigate the effects of this environment on forming planets and their orbital migration. If inward, this natuarlly leads on to a consideration of tidal interaction with the central star which may cause heating and inflation, which appears to be common, or even coallescence with the central star. Such a study requires a fully nonlinear tidal theory for general orbits that we intend to develop. The second investigation relates to solar type stars which many extrasolar planets orbit. It accordingly connects with the investigation of tidal interaction. This investigation is directed towards understanding the behaviour of the solar dynamo and how magnetic flux emerges at the surface. This can be determined from Hinode obsrvations of active regions. Both analytic and numerical studies of dynamo processes will be undertaken together with improved modeling of the solar tachocline which may play an important role in generating toroidal field that rises buoyantly to the surface.
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