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High-Order Fully General-Relativistic Hydrodynamics: new Approaches and Tests

2 Pith papers cite this work. Polarity classification is still indexing.

2 Pith papers citing it
abstract

We present a new approach for achieving high-order convergence in fully general-relativistic hydrodynamic simulations. The approach is implemented in WhiskyTHC, a new code that makes use of state-of-the-art numerical schemes and was key in achieving, for the first time, higher than second-order convergence in the calculation of the gravitational radiation from inspiraling binary neutron stars Radice et al. (2013). Here, we give a detailed description of the algorithms employed and present results obtained for a series of classical tests involving isolated neutron stars. In addition, using the gravitational-wave emission from the late inspiral and merger of binary neutron stars, we make a detailed comparison between the results obtained with the new code and those obtained when using standard second-order schemes commonly employed for matter simulations in numerical relativity. We find that even at moderate resolutions and for binaries with large compactness, the phase accuracy is improved by a factor 50 or more.

fields

gr-qc 2

years

2026 2

verdicts

UNVERDICTED 2

representative citing papers

Dynamical response of twin stars to perturbations

gr-qc · 2026-02-02 · unverdicted · novelty 7.0

Twin-star configurations on the hadronic branch are dynamically favored over hybrid twins because they tolerate stronger perturbations before migrating, with binding energies serving as a proxy for this preference.

citing papers explorer

Showing 2 of 2 citing papers.

  • Exact Mass Conservation in Binary Neutron Star Merger Simulations gr-qc · 2026-05-28 · unverdicted · none · ref 41 · internal anchor

    A rescaling algorithm for artificial atmospheres achieves exact mass and electron number conservation to round-off precision in binary neutron star merger simulations.

  • Dynamical response of twin stars to perturbations gr-qc · 2026-02-02 · unverdicted · none · ref 57 · internal anchor

    Twin-star configurations on the hadronic branch are dynamically favored over hybrid twins because they tolerate stronger perturbations before migrating, with binding energies serving as a proxy for this preference.