On the Verification of Adaptive Three-dimensional Multiresolution Computations of the Magnetohydrodynamic Equations

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Authors

  • Anna Karina Fontes Gomes Post-graduation program in Applied Computing, Brazilian Institute of Space Sciences, São José dos Campos, 12227-010, Brazil Author
  • Margarete Oliveira Domingues Associated Laboratory for Computing and AppliedMathematics, Brazilian Institute of Space Sciences, São José dos Campos, 12227-010, Brazil Author
  • Odim Mendes Space Geophysics Division, Brazilian Institute of Space Sciences, São José dos Campos, 12227-010, Brazil Author
  • Kai Schneider Institut de Mathématiques de Marseille, Aix-Marseille Université CNRS, Centrale Marseille, I2M UMR 7373, 13453, Marseille, France Author

DOI:

https://doi.org/10.5890/JAND.2018.09.002

Abstract

Magnetohydrodynamics is an important tool to study the dynamics of Space Physics. In this context, we introduce a three-dimensional magnetohydrodynamic solver with divergence-cleaning in the adaptive multiresolution CARMEN code. The numerical scheme is based on a finite volume discretization that ensures the conservation of physical quantities. The adaptive multiresolution approach allows for automatic identification of local structures in the numerical solution and thus provides an adaptive mesh refined only in regions where the solution needs more improved resolution. We assess the threedimensional magnetohydrodynamic CARMEN code and compare its results with the ones from the well-known FLASH code.

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PublishedSeptember 2018

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How to Cite

Gomes, A. K. F., Domingues, M. O., Mendes, O., & Schneider, K. (2026). On the Verification of Adaptive Three-dimensional Multiresolution Computations of the Magnetohydrodynamic Equations. Journal of Applied Nonlinear Dynamics, 7(3), 231-242. https://doi.org/10.5890/JAND.2018.09.002