High-accuracy comparison of numerical relativity simulations with post-Newtonian expansions

被引:297
作者
Boyle, Michael
Brown, Duncan A. [1 ,2 ]
Kidder, Lawrence E. [3 ]
Mroue, Abdul H. [3 ]
Pfeiffer, Harald P.
Scheel, Mark A.
Cook, Gregory B. [4 ]
Teukolsky, Saul A. [3 ]
机构
[1] CALTECH, LIGO Lab, Pasadena, CA 91125 USA
[2] Syracuse Univ, Dept Phys, Syracuse, NY 13244 USA
[3] Cornell Univ, Ctr Radiophys & Space Res, Ithaca, NY 14853 USA
[4] Wake Forest Univ, Dept Phys, Winston Salem, NC 27106 USA
来源
PHYSICAL REVIEW D | 2007年 / 76卷 / 12期
关键词
D O I
10.1103/PhysRevD.76.124038
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Numerical simulations of 15 orbits of an equal-mass binary black-hole system are presented. Gravitational waveforms from these simulations, covering more than 30 cycles and ending about 1.5 cycles before merger, are compared with those from quasicircular zero-spin post-Newtonian (PN) formulae. The cumulative phase uncertainty of these comparisons is about 0.05 radians, dominated by effects arising from the small residual spins of the black holes and the small residual orbital eccentricity in the simulations. Matching numerical results to PN waveforms early in the run yields excellent agreement (within 0.05 radians) over the first similar to 15 cycles, thus validating the numerical simulation and establishing a regime where PN theory is accurate. In the last 15 cycles to merger, however, generic time-domain Taylor approximants build up phase differences of several radians. But, apparently by coincidence, one specific post-Newtonian approximant, TaylorT4 at 3.5PN order, agrees much better with the numerical simulations, with accumulated phase differences of less than 0.05 radians over the 30-cycle waveform. Gravitational-wave amplitude comparisons are also done between numerical simulations and post-Newtonian, and the agreement depends on the post-Newtonian order of the amplitude expansion: the amplitude difference is about 6%-7% for zeroth order and becomes smaller for increasing order. A newly derived 3.0PN amplitude correction improves agreement significantly (< 1% amplitude difference throughout most of the run, increasing to 4% near merger) over the previously known 2.5PN amplitude terms.
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页数:31
相关论文
共 151 条
[1]   The present status of the VIRGO Central Interferometer [J].
Acernese, F ;
Amico, P ;
Arnaud, N ;
Arnault, C ;
Babusci, D ;
Ballardin, G ;
Barone, F ;
Barsuglia, M ;
Bellachia, F ;
Beney, JL ;
Bilhaut, R ;
Bizouard, MA ;
Boccara, C ;
Boget, D ;
Bondu, F ;
Bourgoin, C ;
Bozzi, A ;
Bracci, L ;
Braccini, S ;
Bradaschia, C ;
Brillet, A ;
Brisson, V ;
Buskulic, D ;
Cachenaut, J ;
Calamai, G ;
Calloni, E ;
Canitrot, P ;
Caron, B ;
Casciano, C ;
Cattuto, C ;
Cavalier, F ;
Cavaliere, S ;
Cavalieri, R ;
Cecchi, R ;
Cella, G ;
Chiche, R ;
Chollet, F ;
Cleva, F ;
Cokelaer, T ;
Cortese, S ;
Coulon, JP ;
Cuoco, E ;
Cuzon, S ;
Dattilo, V ;
David, PY ;
Davier, M ;
De Rosa, M ;
De Rosa, R ;
Dehamme, M ;
Di Fiore, L .
CLASSICAL AND QUANTUM GRAVITY, 2002, 19 (07) :1421-1428
[2]   The Virgo status [J].
Acernese, F. ;
Amico, P. ;
Alshourbagy, M. ;
Antonucci, F. ;
Aoudia, S. ;
Avino, S. ;
Babusci, D. ;
Ballardin, G. ;
Barone, F. ;
Barsotti, L. ;
Barsuglia, M. ;
Beauville, F. ;
Bigotta, S. ;
Birindelli, S. ;
Bizouard, M. A. ;
Boccara, C. ;
Bondu, F. ;
Bosi, L. ;
Bradaschia, C. ;
Braccini, S. ;
Brillet, A. ;
Brisson, V. ;
Brocco, L. ;
Buskulic, D. ;
Calloni, E. ;
Campagna, E. ;
Cavalier, F. ;
Cavalieri, R. ;
Cella, G. ;
Cesarini, E. ;
Chassande-Mottin, E. ;
Corda, C. ;
Cottone, F. ;
Clapson, A-C ;
Cleva, F. ;
Coulon, J-P ;
Cuoco, E. ;
Dari, A. ;
Dattilo, V. ;
Davier, M. ;
De Rosa, R. ;
Di Fiore, L. ;
Di Virgilio, A. ;
Dujardin, B. ;
Eleuteri, A. ;
Enard, D. ;
Ferrante, I. ;
Fidecaro, F. ;
Fiori, I. ;
Flaminio, R. .
CLASSICAL AND QUANTUM GRAVITY, 2006, 23 (19) :S635-S642
[3]   A phenomenological template family for black-hole coalescence waveforms [J].
Ajith, P. ;
Babak, S. ;
Chen, Y. ;
Hewitson, M. ;
Krishnan, B. ;
Whelan, J. T. ;
Bruegmann, B. ;
Diener, P. ;
Gonzalez, J. ;
Hannam, M. ;
Husa, S. ;
Koppitz, M. ;
Pollney, D. ;
Rezzolla, L. ;
Santamaria, L. ;
Sintes, A. M. ;
Sperhake, U. ;
Thornburg, J. .
CLASSICAL AND QUANTUM GRAVITY, 2007, 24 (19) :S689-S699
[4]  
[Anonymous], 2000, Phys. Rev. D
[5]   The 2.5PN gravitational wave polarizations from inspiralling compact binaries in circular orbits [J].
Arun, KG ;
Blanchet, L ;
Iyer, BR ;
Qusailah, MSS .
CLASSICAL AND QUANTUM GRAVITY, 2004, 21 (15) :3771-3801
[6]   The 2.5PN gravitational wave polarizations from inspiralling compact binaries in circular orbits (vol 21, pg 3771, 2005) [J].
Arun, KG ;
Blanchet, L ;
Iyer, BR ;
Qusailah, MSS .
CLASSICAL AND QUANTUM GRAVITY, 2005, 22 (14) :3115-3117
[7]   Dynamical horizons and their properties [J].
Ashtekar, A ;
Krishnan, B .
PHYSICAL REVIEW D, 2003, 68 (10)
[8]   Mechanics of rotating isolated horizons [J].
Ashtekar, A ;
Beetle, C ;
Lewandowski, J .
PHYSICAL REVIEW D, 2001, 64 (04)
[9]   Gravitational-wave extraction from an inspiraling configuration of merging black holes [J].
Baker, JG ;
Centrella, J ;
Choi, DI ;
Koppitz, M ;
van Meter, J .
PHYSICAL REVIEW LETTERS, 2006, 96 (11)
[10]   Binary black hole late inspiral: Simulations for gravitational wave observations [J].
Baker, John G. ;
McWilliams, Sean T. ;
van Meter, James R. ;
Centrella, Joan ;
Choi, Dae-Il ;
Kelly, Bernard J. ;
Koppitz, Michael .
PHYSICAL REVIEW D, 2007, 75 (12)