• Title of article

    Implication of the lopsided growth for the viscosity of Earthʹs inner core

  • Author/Authors

    Mizzon، نويسنده , , Hugau and Monnereau، نويسنده , , Marc، نويسنده ,

  • Issue Information
    روزنامه با شماره پیاپی سال 2013
  • Pages
    11
  • From page
    391
  • To page
    401
  • Abstract
    A particular mode of convection, called translation, has recently been put forward as an important mode of inner core dynamics because this mechanism is able to explain the observed east–west asymmetry of P-wave velocity and attenuation (Monnereau et al., 2010). Translation is a particular solution to Navier–Stokes equation with permeable boundary conditions, but depending on the viscosity of the solid core, modes with higher spherical harmonics degree can develop. At low viscosity, these modes can be dominant and dissipate the degree l=1 of thermal heterogeneities. Hence, a viscosity threshold may be expected below which translation cannot take place, thereby constraining the viscosity of iron at inner core conditions. a hybrid finite-difference spherical harmonics Navier–Stokes solver, we investigate here the interplay between translation and convection in a 3D spherical model with permeable boundary conditions. Our numerical simulations show the dominance of pure translation for viscosities of the inner core higher than 4 × 10 18 Pa s . Translation is almost completely hampered by convective motions for viscosities lower than 10 17 Pa s and the phase change becomes an almost impermeable boundary. Between these values, a well developed circulation at the harmonic degree l=1 persists, but composed of localized cold downwellings, a passive upward flow taking place on the opposite side (the melting side). Such a convective structure remains compatible with the seismic asymmetry.
  • Keywords
    Numerical Modeling , Thermal convection , Earthיs inner core , Translation
  • Journal title
    Earth and Planetary Science Letters
  • Serial Year
    2013
  • Journal title
    Earth and Planetary Science Letters
  • Record number

    2331265