We investigate the possibility approximating relativistic effects in hydrodynamical simulations of stellar core collapse and post-bounce evolution by using a modified gravitational potential in an otherwise standard Newtonian hydrodynamic code. Different modifications of a previously introduced effective relativistic potential are discussed. Corresponding hydrostatic solutions are compared with solutions of the TOV equations, and hydrodynamic simulations with two different codes are compared with fully relativistic results. One code is applied for one- and two-dimensional calculations with a simple equation of state, and employs either the modified effective relativistic potential in a Newtonian framework or solves the general re...
We present the derivation of hydrodynamical equations for a perfect fluid in General Relativity, wit...
We present a new numerical code that solves the general relativistic magneto-hydrodynamical (GRMHD) ...
We present a new numerical code that solves the general relativistic magneto-hydrodynamical (GRMHD) ...
We investigate the possibility approximating relativistic effects in hydrodynamical simulations of ...
We present the generalization of a recently introduced modified gravitational potential for self-gr...
In this research, the validity of using an effective potential to approximate general relativistic e...
We propose an approximation to full relativity that captures the main gravitational effects of dynam...
We continue our investigations of the magnetorotational collapse of stellar cores by discussing sim...
We have performed hydrodynamic simulations of relativistic rotational supernova core collapse in ax...
Although general relativistic cosmological solutions, even in the presence of pressure, can be mimic...
We describe an axisymmetric general relativistic code for rotational core collapse. The code evolve...
We have performed hydrodynamic simulations of relativistic rotational supernova core collapse in axi...
Relativistic hydrodynamics is a very successful theoretical framework to describe the dynamics of ma...
The current status of numerical solutions for the equations of ideal general relativistic hydrodynam...
We apply our recently developed code for spherically symmetric, fully general relativistic (GR) Lagr...
We present the derivation of hydrodynamical equations for a perfect fluid in General Relativity, wit...
We present a new numerical code that solves the general relativistic magneto-hydrodynamical (GRMHD) ...
We present a new numerical code that solves the general relativistic magneto-hydrodynamical (GRMHD) ...
We investigate the possibility approximating relativistic effects in hydrodynamical simulations of ...
We present the generalization of a recently introduced modified gravitational potential for self-gr...
In this research, the validity of using an effective potential to approximate general relativistic e...
We propose an approximation to full relativity that captures the main gravitational effects of dynam...
We continue our investigations of the magnetorotational collapse of stellar cores by discussing sim...
We have performed hydrodynamic simulations of relativistic rotational supernova core collapse in ax...
Although general relativistic cosmological solutions, even in the presence of pressure, can be mimic...
We describe an axisymmetric general relativistic code for rotational core collapse. The code evolve...
We have performed hydrodynamic simulations of relativistic rotational supernova core collapse in axi...
Relativistic hydrodynamics is a very successful theoretical framework to describe the dynamics of ma...
The current status of numerical solutions for the equations of ideal general relativistic hydrodynam...
We apply our recently developed code for spherically symmetric, fully general relativistic (GR) Lagr...
We present the derivation of hydrodynamical equations for a perfect fluid in General Relativity, wit...
We present a new numerical code that solves the general relativistic magneto-hydrodynamical (GRMHD) ...
We present a new numerical code that solves the general relativistic magneto-hydrodynamical (GRMHD) ...