To detect the gravitational-wave (GW) signal from binary neutron stars and extract information about the equation of state of matter at nuclear density, it is necessary to match the signal with a bank of accurate templates. We present the two longest (to date) general-relativistic simulations of equal-mass binary neutron stars with different compactnesses, C=0.12 and C=0.14, and compare them with a tidal extension of the effective-one-body (EOB) model. The typical numerical phasing errors over the 22GW cycles are Δφ±0.24rad. By calibrating only one parameter (representing a higher-order amplification of tidal effects), the EOB model can reproduce, within the numerical error, the two numerical waveforms essentially up to the merger. By contrast, the third post-Newtonian Taylor-T4 approximant with leading-order tidal corrections dephases with respect to the numerical waveforms by several radians
Baiotti, L., Damour, T., Giacomazzo, B., Nagar, A., Rezzolla, L. (2010). Analytic Modeling of Tidal Effects in the Relativistic Inspiral of Binary Neutron Stars. PHYSICAL REVIEW LETTERS, 105(26) [10.1103/PhysRevLett.105.261101].
Analytic Modeling of Tidal Effects in the Relativistic Inspiral of Binary Neutron Stars
Giacomazzo, B;
2010
Abstract
To detect the gravitational-wave (GW) signal from binary neutron stars and extract information about the equation of state of matter at nuclear density, it is necessary to match the signal with a bank of accurate templates. We present the two longest (to date) general-relativistic simulations of equal-mass binary neutron stars with different compactnesses, C=0.12 and C=0.14, and compare them with a tidal extension of the effective-one-body (EOB) model. The typical numerical phasing errors over the 22GW cycles are Δφ±0.24rad. By calibrating only one parameter (representing a higher-order amplification of tidal effects), the EOB model can reproduce, within the numerical error, the two numerical waveforms essentially up to the merger. By contrast, the third post-Newtonian Taylor-T4 approximant with leading-order tidal corrections dephases with respect to the numerical waveforms by several radiansI documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.