A short note on reconstruction variables in shock capturing schemes for magnetohydrodynamics
From MaRDI portal
Publication:2123844
DOI10.1016/j.jcp.2020.109804OpenAlexW3082537757MaRDI QIDQ2123844
Takashi Minoshima, Takahiro Miyoshi
Publication date: 14 April 2022
Published in: Journal of Computational Physics (Search for Journal in Brave)
Full work available at URL: https://arxiv.org/abs/2009.00766
Related Items (1)
Uses Software
Cites Work
- Unnamed Item
- Efficient, high accuracy ADER-WENO schemes for hydrodynamics and divergence-free magneto\-hydrodynamics
- An upwind differencing scheme for the equations of ideal magnetohydrodynamics
- Uniformly high order accurate essentially non-oscillatory schemes. III
- Efficient implementation of essentially nonoscillatory shock-capturing schemes
- A high-order WENO finite difference scheme for the equations of ideal magnetohydrodynamics
- An approximate Riemann solver for ideal magnetohydrodynamics
- Weighted essentially non-oscillatory schemes
- Accurate monotonicity-preserving schemes with Runge-Kutta time stepping
- Monotonicity preserving weighted essentially non-oscillatory schemes with increasingly high order of accuracy
- The \(\nabla \cdot B=0\) constraint in shock-capturing magnetohydrodynamics codes
- Hyperbolic divergence cleaning for the MHD equations
- A solution-adaptive upwind scheme for ideal magnetohydrodynamics
- Towards the ultimate conservative difference scheme. V. A second-order sequel to Godunov's method
- A multi-state HLL approximate Riemann solver for ideal magnetohydrodynamics
- Notes on the Eigensystem of Magnetohydrodynamics
- CANS+
This page was built for publication: A short note on reconstruction variables in shock capturing schemes for magnetohydrodynamics