A stable and conservative interface treatment of arbitrary spatial accuracy MH Carpenter, J Nordström, D Gottlieb Journal of Computational Physics 148 (2), 341-365, 1999 | 516 | 1999 |
Review of summation-by-parts schemes for initial–boundary-value problems M Svärd, J Nordström Journal of Computational Physics 268, 17-38, 2014 | 472 | 2014 |
Summation by parts operators for finite difference approximations of second derivatives K Mattsson, J Nordström Journal of Computational Physics 199 (2), 503-540, 2004 | 431 | 2004 |
A stable high-order finite difference scheme for the compressible Navier–Stokes equations, far-field boundary conditions M Svärd, MH Carpenter, J Nordström Journal of Computational Physics 225 (1), 1020-1038, 2007 | 251 | 2007 |
The fringe region technique and the Fourier method used in the direct numerical simulation of spatially evolving viscous flows J Nordström, N Nordin, D Henningson SIAM Journal on Scientific Computing 20 (4), 1365-1393, 1999 | 229 | 1999 |
On the order of accuracy for difference approximations of initial-boundary value problems M Svärd, J Nordström Journal of Computational Physics 218 (1), 333-352, 2006 | 220 | 2006 |
Boundary and interface conditions for high-order finite-difference methods applied to the Euler and Navier–Stokes equations J Nordström, MH Carpenter Journal of Computational Physics 148 (2), 621-645, 1999 | 206 | 1999 |
Stable and accurate artificial dissipation K Mattsson, M Svärd, J Nordström Journal of Scientific Computing 21, 57-79, 2004 | 204 | 2004 |
A stable high-order finite difference scheme for the compressible Navier–Stokes equations: no-slip wall boundary conditions M Svärd, J Nordström Journal of Computational Physics 227 (10), 4805-4824, 2008 | 199 | 2008 |
Discretely conservative finite-difference formulations for nonlinear conservation laws in split form: Theory and boundary conditions TC Fisher, MH Carpenter, J Nordström, NK Yamaleev, C Swanson Journal of Computational Physics 234, 353-375, 2013 | 195 | 2013 |
High-order finite difference methods, multidimensional linear problems, and curvilinear coordinates J Nordström, MH Carpenter Journal of Computational Physics 173 (1), 149-174, 2001 | 182 | 2001 |
A stable and conservative high order multi-block method for the compressible Navier–Stokes equations J Nordström, J Gong, E Van der Weide, M Svärd Journal of Computational Physics 228 (24), 9020-9035, 2009 | 162 | 2009 |
Well-posed boundary conditions for the Navier--Stokes equations J Nordström, M Svärd SIAM Journal on numerical analysis 43 (3), 1231-1255, 2005 | 149 | 2005 |
Conservative finite difference formulations, variable coefficients, energy estimates and artificial dissipation J Nordström Journal of Scientific Computing 29, 375-404, 2006 | 140 | 2006 |
Finite volume methods, unstructured meshes and strict stability for hyperbolic problems J Nordström, K Forsberg, C Adamsson, P Eliasson Applied Numerical Mathematics 45 (4), 453-473, 2003 | 140 | 2003 |
Simulation of dynamic earthquake ruptures in complex geometries using high-order finite difference methods JE Kozdon, EM Dunham, J Nordström Journal of Scientific Computing 55, 92-124, 2013 | 126 | 2013 |
Polynomial chaos methods for hyperbolic partial differential equations MP Pettersson, G Iaccarino, J Nordstrom Springer Math Eng 10 (1007), 978-973, 2015 | 123 | 2015 |
Summation-by-parts in time J Nordström, T Lundquist Journal of Computational Physics 251, 487-499, 2013 | 103 | 2013 |
Revisiting and extending interface penalties for multi-domain summation-by-parts operators MH Carpenter, J Nordström, D Gottlieb Journal of Scientific Computing 45, 118-150, 2010 | 92 | 2010 |
A roadmap to well posed and stable problems in computational physics J Nordström Journal of Scientific Computing 71 (1), 365-385, 2017 | 90 | 2017 |