Application of an Upwind Integration Method to Plane Parallel Hall-MHD
Georgios Chouliaras, K.N Gourgouliatos

TL;DR
This paper demonstrates that using an Upwind integration scheme significantly improves the numerical convergence and efficiency of Hall-MHD simulations in neutron star crusts, enabling exploration of higher Hall parameters closer to realistic conditions.
Contribution
The study introduces and compares an Upwind scheme to traditional methods, showing its advantages in convergence and stability for Hall-MHD simulations in neutron star crusts.
Findings
Upwind scheme improves convergence at higher Hall parameters.
Upwind scheme prevents infinite energy divergence seen in FTCS.
Enhanced simulation efficiency allows modeling more realistic neutron star environments.
Abstract
We study the impact of an Upwind scheme on the numerical convergence of simulations of the Hall and Ohmic effect in neutron stars crusts. While simulations of these effects have explored a variety of geometries and wide ranges of physical parameters, they are limited to relatively low values of the Hall parameter, playing the role of the magnetic Reynolds number, which should be not exceed a few hundred for numerical convergence. We study the evolution of the magnetic field in a plane-parallel Cartesian geometry. We discretise the induction equation using a finite difference scheme and then integrate it via the Euler forward method. Two different approaches are used for the integration of the advective terms appearing in the equation: a Forward Time and Central in Space (FTCS) and an Upwind scheme. We compare them in terms of accuracy and performance. We explore the impact of the…
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Taxonomy
TopicsSolar and Space Plasma Dynamics · Geophysics and Gravity Measurements · Ionosphere and magnetosphere dynamics
