4.7 Article

II. The effect of axisymmetric and spatially varying equilibria and flow on MHD wave modes: cylindrical geometry

Journal

MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY
Volume 510, Issue 2, Pages 2689-2706

Publisher

OXFORD UNIV PRESS
DOI: 10.1093/mnras/stab3635

Keywords

MHD; waves; Sun: oscillations

Funding

  1. STEC (UK)
  2. Science and Technology Facilities Council (STFC) [ST/V000977/1]
  3. Royal Society [IES191114, 1E17030 I]
  4. Research Council of Norway [262622]
  5. European Union's Horizon 2020 research and innovation program [824135]
  6. [2135820]

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This study investigates the properties of magnetohydrodynamic waves under non-uniform equilibria and examines the effects of non-uniform plasma density and flow on different wave modes. The results show that increasing equilibrium non-uniformity affects the spatial eigenfunctions and introduces additional nodes, while also increasing azimuthal perturbations and creating vortical motions.
Magnetohydrodynamic (MHD) waves are routinely observed in the solar atmosphere. These waves are important in the context of solar physics as it is widely believed they can contribute to the energy budget of the solar atmosphere and are a prime candidate to contribute towards coronal heating. Realistic models of these waves are required representing observed configurations such that plasma properties can be determined more accurately, since they cannot be measured directly. This work utilizes a previously developed numerical technique to find permittable eigenvalues under different non-uniform equilibrium conditions in a Cartesian magnetic slab geometry. Here, we investigate the properties of magnetoacoustic waves under non-uniform equilibria in a cylindrical geometry. Previously obtained analytical results are retrieved to emphasize the power and applicability of this numerical technique. Further case studies investigate the effect that a radially non-uniform plasma density and non-uniform plasma flow, modelled as a series of Gaussian profiles, have on the properties of different MHD waves. For all cases the dispersion diagrams are obtained and spatial eigenfunctions calculated which display the effects of the equilibrium inhomogeneity. It is shown that as the equilibrium non-uniformity is increased, the radial spatial eigenfunctions are affected and extra nodes introduced, similar to the previous investigation of a magnetic slab. Furthermore, azimuthal perturbations are increased with increasing inhomogeneity introducing vortical motions inside the waveguide. Finally, 2D and 3D representations of the velocity fields are shown which may be useful for observers for wave mode identification under realistic magnetic waveguides with ever increasing instrument resolution.

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