Gravitational Wavetrains in the Quasi-Equilibrium Approximation: A Model Problem in Scalar Gravitation
arXiv:gr-qc/0011028 · doi:10.1103/PhysRevD.63.064035
Abstract
A quasi-equilibrium (QE) computational scheme was recently developed in general relativity to calculate the complete gravitational wavetrain emitted during the inspiral phase of compact binaries. The QE method exploits the fact that the the gravitational radiation inspiral timescale is much longer than the orbital period everywhere outside the ISCO. Here we demonstrate the validity and advantages of the QE scheme by solving a model problem in relativistic scalar gravitation theory. By adopting scalar gravitation, we are able to numerically track without approximation the damping of a simple, quasi-periodic radiating system (an oscillating spherical matter shell) to final equilibrium, and then use the exact numerical results to calibrate the QE approximation method. In particular, we calculate the emitted gravitational wavetrain three different ways: by integrating the exact coupled dynamical field and matter equations, by using the scalar-wave monopole approximation formula (corresponding to the quadrupole formula in general relativity), and by adopting the QE scheme. We find that the monopole formula works well for weak field cases, but fails when the fields become even moderately strong. By contrast, the QE scheme remains quite reliable for moderately strong fields, and begins to breakdown only for ultra-strong fields. The QE scheme thus provides a promising technique to construct the complete wavetrain from binary inspiral outside the ISCO, where the gravitational fields are strong, but where the computational resources required to follow the system for more than a few orbits by direct numerical integration of the exact equations are prohibitive.
15 pages, 14 figures
References in corpus (6)
- Transition from inspiral to plunge in binary black hole coalescences
- On the determination of the last stable orbit for circular general relativistic binaries at the third post-Newtonian approximation
- The Innermost Stable Circular Orbit of Binary Black Holes
- A new numerical method for constructing quasi-equilibrium sequences of irrotational binary neutron stars in general relativity
- Properties of general relativistic, irrotational binary neutron stars in close quasiequilibrium orbits : Polytropic equations of state
- Irrotational binary neutron stars in quasiequilibrium
Cited by in corpus (10)
- Numerical Relativity and Compact Binaries
- Towards a Realistic Neutron Star Binary Inspiral: Initial Data and Multiple Orbit Evolution in Full General Relativity
- Nordstrom's scalar theory of gravity and the equivalence principle
- Gravitational wave extraction based on Cauchy-characteristic extraction and characteristic evolution
- Space-time Philosophy Reconstructed via Massive Nordström Scalar Gravities? Laws vs. Geometry, Conventionality, and Underdetermination
- Computing the Complete Gravitational Wavetrain from Relativistic Binary Inspiral
- Comparing the inspiral of irrotational and corotational binary neutron stars
- On the Circular Orbit Approximation for Binary Compact Objects In General Relativity
- Comparing Criteria for Circular Orbits in General Relativity
- Conformal transformations and Nordström's scalar theory of gravity