Relativistic Hydrodynamics in Close Binary Systems: Analysis of Neutron-Star Collapse
arXiv:gr-qc/9710140 · doi:10.1103/PhysRevD.58.043003
Abstract
We discuss the underlying relativistic physics which causes neutron stars to compress and collapse in close binary systems as has recently been observed in numerical (3+1) dimensional general relativistic hydrodynamic simulations. We show that compression is driven by velocity-dependent relativistic hydrodynamic terms which increase the self gravity of the stars. They also produce fluid motion with respect to the corotating frame of the binary. We present numerical and analytic results which confirm that such terms are insignificant for uniform translation or when the hydrodynamics is constrained to rigid corotation. However, when the hydrodynamics is unconstrained, the neutron star fluid relaxes to a compressed nonsynchronized state of almost no net intrinsic spin with respect to a distant observer. We also show that tidal decompression effects are much less than the velocity-dependent compression terms. We discuss why several recent attempts to analyze this effect with constrained hydrodynamics or an analysis of tidal forces do not observe compression. We argue that an independent test of this must include unconstrained relativistic hydrodynamics to sufficiently high order that all relevant velocity-dependent terms and their possible cancellations are included.
14 pages, 3 figures PRD Accepted for publication
References in corpus (14)
- A simple construction of initial data for multiple black holes
- General Relativistic Models of Binary Neutron Stars in Quasiequilibrium
- A relativistic formalism to compute quasi-equilibrium configurations of non-synchronized neutron star binaries
- Binary Neutron Stars in General Relativity: Quasi-Equilibrium Models
- A relativistic formalism for computation of irrotational binary stars in quasi equilibrium states
- Post-Newtonian Models of Binary Neutron Stars
- The Stability of Relativistic Neutron Stars in Binary Orbit
- Stability of coalescing binary stars against gravitational collapse: hydrodynamical simulations
- The central density of neutron stars in close binaries
- The central density of a neutron star is unaffected by a binary companion at linear order in
- Solving the Darwin problem in the first post-Newtonian approximation of general relativity: compressible model
- Solving the Darwin problem in the first post-Newtonian approximation of general relativity
- Location of the innermost stable circular orbit of binary neutron stars in the post Newtonian approximations of general relativity
- Binary-Induced Gravitational Collapse: A Trivial Example
Cited by in corpus (36)
- Accurate evolutions of inspiralling neutron-star binaries: prompt and delayed collapse to black hole
- Quasiequilibrium sequences of synchronized and irrotational binary neutron stars in general relativity. I. Method and tests
- Binary Neutron Star Mergers
- Initial Data for Numerical Relativity
- Binary black holes in circular orbits. II. Numerical methods and first results
- Binary black holes in circular orbits. I. A global spacetime approach
- Mergers of binary neutron stars with realistic spin
- Nonlinear hydrodynamical evolution of rotating relativistic stars: Numerical methods and code tests
- Numerical models of irrotational binary neutron stars in general relativity
- A new numerical method for constructing quasi-equilibrium sequences of irrotational binary neutron stars in general relativity
- Statistical approach for supernova matter
- Measuring Neutron Star Radii with Gravitational Wave Detectors
- General Relativistic Augmentation of Neutrino Pair Annihilation Energy Deposition Near Neutron Stars
- Numerical hydrodynamics in general relativity
- Irrotational binary neutron stars in quasiequilibrium
- Revised Relativistic Hydrodynamical Model for Neutron-Star Binaries
- A new numerical method to construct binary neutron star initial data
- Initial data for binary neutron stars with arbitrary spins
- Binary Neutron-Star Systems: From the Newtonian Regime to the Last Stable Orbit
- Possible explanation for star-crushing effect in binary neutron star simulations
- Mergers of Irrotational Neutron Star Binaries in Conformally Flat Gravity
- Post-Newtonian SPH calculations of binary neutron star coalescence. III. Irrotational systems and gravitational wave spectra
- The initial value problem as it relates to numerical relativity
- Relativistic Models for Binary Neutron Stars with Arbitrary Spins
- Are neutron stars crushed? Gravitomagnetic tidal fields as a mechanism for binary-induced collapse
- General-relativistic coupling between orbital motion and internal degrees of freedom for inspiraling binary neutron stars
- Gamma-Ray Bursts via the Neutrino Emission from Heated Neutron Stars
- White Dwarfs Near Black Holes: A New Paradigm for Type I Supernovae
- The gauge invariance of general relativistic tidal heating
- Energy Localization Invariance of Tidal Work in General Relativity
- A Numerical Study of Boson Star Binaries
- General Relativistic Decompression of Binary Neutron Stars During Dynamic Inspiral
- Review of Conformally Flat Approximation for Binary Neutron Star Initial Conditions
- Methods for relativistic self-gravitating fluids: From binary neutron stars to black hole-disks and magnetized rotating neutron stars
- Evolution systems for non-linear perturbations of background geometries
- Static Charged Polytropic Spheres with a Cosmological Constant: Physical Acceptability and Trapped Orbits