We developed ROXAS, a numerical code to evolve fast rotating isolated neutron stars and extract their oscillation modes. A new hydrodynamic formalism was introduced, based on primitive rather than conserved variables, avoiding costly recovery procedures. We employed multi-domain pseudospectral methods along with filters to mitigate aliasing. The framework was validated on the scalar wave equation, then extended to self-gravitating configurations in both Newtonian and relativistic regimes. A key feature is accurate stellar surface tracking. We extracted radial and non-axisymmetric modes of polytropic rapidly rotating stars. We also used tabulated nuclear equations of state (both in beta equilibrium and out of equilibrium), extracted and validated the resulting oscillation modes.
We developed ROXAS, a numerical code to evolve fast rotating isolated neutron stars and extract their oscillation modes. A new hydrodynamic formalism was introduced, based on primitive rather than conserved variables, avoiding costly recovery procedures. We employed multi-domain pseudospectral methods along with filters to mitigate aliasing. The framework was validated on the scalar wave equation, then extended to self-gravitating configurations in both Newtonian and relativistic regimes. A key feature is accurate stellar surface tracking. We extracted radial and non-axisymmetric modes of polytropic rapidly rotating stars. We also used tabulated nuclear equations of state (both in beta equilibrium and out of equilibrium), extracted and validated the resulting oscillation modes.