A hybrid finite-difference/boundary element procedure for the simulation of turbulent MHD duct flow at finite magnetic Reynolds numbers
Vinodh Bandaru, Thomas Boeck, Dmitry Krasnov, J\"org Schumacher

TL;DR
This paper introduces a combined finite difference and boundary element method to simulate turbulent magnetohydrodynamic flow in a duct at finite magnetic Reynolds numbers, accounting for magnetic field interactions with turbulence.
Contribution
It develops a conservative coupled numerical scheme for turbulent MHD duct flow, incorporating non-local magnetic boundary conditions and validating against quasistatic results.
Findings
Significant turbulence differences at moderate magnetic Reynolds numbers.
Validated the numerical scheme with low Reynolds number comparisons.
Quantified effects of magnetic boundary conditions on flow turbulence.
Abstract
A conservative coupled finite difference-boundary element computational procedure for the simulation of turbulent magnetohydrodynamic flow in a straight rectangular duct at finite magnetic Reynolds number is presented. The flow is assumed to be periodic in the streamwise direction and is driven by a mean pressure gradient. The duct walls are considered to be electrically insulating. The co-evolution of the velocity and magnetic fields as described respectively by the Navier-Stokes and the magnetic induction equations, together with the coupling of the magnetic field between the conducting domain and the non-conducting exterior is solved using the magnetic field formulation. The aim is to simulate localized magnetic fields interacting with turbulent duct flow. Detailed verification of the implementation of the numerical scheme is conducted in the limiting case of low magnetic Reynolds…
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