Waveform model for an eccentric binary black hole based on the effective-one-body-numerical-relativity formalism

被引:140
作者
Cao, Zhoujian [1 ,2 ]
Han, Wen-Biao [3 ,4 ]
机构
[1] Beijing Normal Univ, Dept Astron, Beijing 100875, Peoples R China
[2] Chinese Acad Sci, Acad Math & Syst Sci, Inst Appl Math, Beijing 100190, Peoples R China
[3] Shanghai Astron Observ, 80 Nandan Rd, Shanghai 200030, Peoples R China
[4] Univ Chinese Acad Sci, Sch Astron & Space Sci, Beijing 100049, Peoples R China
关键词
GRAVITATIONAL-RADIATION; INSPIRALS; SYSTEMS; MERGERS; SPIN;
D O I
10.1103/PhysRevD.96.044028
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Binary black hole systems are among the most important sources for gravitational wave detection. They are also good objects for theoretical research for general relativity. A gravitational waveform template is important to data analysis. An effective-one-body-numerical-relativity (EOBNR) model has played an essential role in the LIGO data analysis. For future space-based gravitational wave detection, many binary systems will admit a somewhat orbit eccentricity. At the same time, the eccentric binary is also an interesting topic for theoretical study in general relativity. In this paper, we construct the first eccentric binary waveform model based on an effective-one-body-numerical-relativity framework. Our basic assumption in the model construction is that the involved eccentricity is small. We have compared our eccentric EOBNR model to the circular one used in the LIGO data analysis. We have also tested our eccentric EOBNR model against another recently proposed eccentric binary waveform model; against numerical relativity simulation results; and against perturbation approximation results for extreme mass ratio binary systems. Compared to numerical relativity simulations with an eccentricity as large as about 0.2, the overlap factor for our eccentric EOBNR model is better than 0.98 for all tested cases, including spinless binary and spinning binary, equal mass binary, and unequal mass binary. Hopefully, our eccentric model can be the starting point to develop a faithful template for future space-based gravitational wave detectors.
引用
收藏
页数:23
相关论文
共 83 条
[1]   GW150914: The Advanced LIGO Detectors in the Era of First Discoveries [J].
Abbott, B. P. ;
Abbott, R. ;
Abbott, T. D. ;
Abernathy, M. R. ;
Acernese, F. ;
Ackley, K. ;
Adams, C. ;
Adams, T. ;
Addesso, P. ;
Adhikari, R. X. ;
Adya, V. B. ;
Affeldt, C. ;
Agathos, M. ;
Agatsuma, K. ;
Aggarwal, N. ;
Aguiar, O. D. ;
Aiello, L. ;
Ain, A. ;
Ajith, P. ;
Allen, B. ;
Allocca, A. ;
Altin, P. A. ;
Anderson, S. B. ;
Anderson, W. G. ;
Arai, K. ;
Araya, M. C. ;
Arceneaux, C. C. ;
Areeda, J. S. ;
Arnaud, N. ;
Arun, K. G. ;
Ascenzi, S. ;
Ashton, G. ;
Ast, M. ;
Aston, S. M. ;
Astone, P. ;
Aufmuth, P. ;
Aulbert, C. ;
Babak, S. ;
Bacon, P. ;
Bader, M. K. M. ;
Baker, P. T. ;
Baldaccini, F. ;
Ballardin, G. ;
Ballmer, S. W. ;
Barayoga, J. C. ;
Barclay, S. E. ;
Barish, B. C. ;
Barker, D. ;
Barone, F. ;
Barr, B. .
PHYSICAL REVIEW LETTERS, 2016, 116 (13)
[2]  
Abbott BP, 2017, PHYS REV LETT, V118, DOI [10.1103/PhysRevLett.118.221101, 10.1103/PhysRevLett.118.121102]
[3]   Improved Analysis of GW150914 Using a Fully Spin-Precessing Waveform Model [J].
Abbott, B. P. ;
Abbott, R. ;
Abbott, T. D. ;
Abernathy, M. R. ;
Acernese, F. ;
Ackley, K. ;
Adams, C. ;
Adams, T. ;
Addesso, P. ;
Adhikari, R. X. ;
Adya, V. B. ;
Affeldt, C. ;
Agathos, M. ;
Agatsuma, K. ;
Aggarwal, N. ;
Aguiar, O. D. ;
Aiello, L. ;
Ain, A. ;
Ajith, P. ;
Allen, B. ;
Allocca, A. ;
Altin, P. A. ;
Anderson, S. B. ;
Anderson, W. G. ;
Arai, K. ;
Araya, M. C. ;
Arceneaux, C. C. ;
Areeda, J. S. ;
Arnaud, N. ;
Arun, K. G. ;
Ascenzi, S. ;
Ashton, G. ;
Ast, M. ;
Aston, S. M. ;
Astone, P. ;
Aufmuth, P. ;
Aulbert, C. ;
Babak, S. ;
Bacon, P. ;
Bader, M. K. M. ;
Baker, P. T. ;
Baldaccini, F. ;
Ballardin, G. ;
Ballmer, S. W. ;
Barayoga, J. C. ;
Barclay, S. E. ;
Barish, B. C. ;
Barker, D. ;
Barone, F. ;
Barr, B. .
PHYSICAL REVIEW X, 2016, 6 (04)
[4]   Intermediate and extreme mass-ratio inspirals - astrophysics, science applications and detection using LISA [J].
Amaro-Seoane, Pau ;
Gair, Jonathan R. ;
Freitag, Marc ;
Miller, M. Coleman ;
Mandel, Ilya ;
Cutler, Curt J. ;
Babak, Stanislav .
CLASSICAL AND QUANTUM GRAVITY, 2007, 24 (17) :R113-R169
[5]   Low-frequency gravitational-wave science with eLISA/NGO [J].
Amaro-Seoane, Pau ;
Aoudia, Sofiane ;
Babak, Stanislav ;
Binetruy, Pierre ;
Berti, Emanuele ;
Bohe, Alejandro ;
Caprini, Chiara ;
Colpi, Monica ;
Cornish, Neil J. ;
Danzmann, Karsten ;
Dufaux, Jean-Francois ;
Gair, Jonathan ;
Jennrich, Oliver ;
Jetzer, Philippe ;
Klein, Antoine ;
Lang, Ryan N. ;
Lobo, Alberto ;
Littenberg, Tyson ;
McWilliams, Sean T. ;
Nelemans, Gijs ;
Petiteau, Antoine ;
Porter, Edward K. ;
Schutz, Bernard F. ;
Sesana, Alberto ;
Stebbins, Robin ;
Sumner, Tim ;
Vallisneri, Michele ;
Vitale, Stefano ;
Volonteri, Marta ;
Ward, Henry .
CLASSICAL AND QUANTUM GRAVITY, 2012, 29 (12)
[6]   BLACK HOLE MERGERS AND BLUE STRAGGLERS FROM HIERARCHICAL TRIPLES FORMED IN GLOBULAR CLUSTERS [J].
Antonini, Fabio ;
Chatterjee, Sourav ;
Rodriguez, Carl L. ;
Morscher, Meagan ;
Pattabiraman, Bharath ;
Kalogera, Vicky ;
Rasio, Frederic A. .
ASTROPHYSICAL JOURNAL, 2016, 816 (02)
[7]   GRAVITATIONAL-RADIATION FROM A PARTICLE IN CIRCULAR ORBIT AROUND A BLACK-HOLE .3. STABILITY OF CIRCULAR ORBITS UNDER RADIATION REACTION [J].
APOSTOLATOS, T ;
KENNEFICK, D ;
ORI, A ;
POISSON, E .
PHYSICAL REVIEW D, 1993, 47 (12) :5376-5388
[8]  
Audley H., arXiv: 1702. 00786
[9]   Validating the effective-one-body model of spinning, precessing binary black holes against numerical relativity [J].
Babak, Stanislav ;
Taracchini, Andrea ;
Buonanno, Alessandra .
PHYSICAL REVIEW D, 2017, 95 (02)
[10]   From binary black hole simulation to triple black hole simulation [J].
Bai, Shan ;
Cao, Zhoujian ;
Han, Wen-Biao ;
Lin, Chun-Yu ;
Yo, Hwei-Jang ;
Yu, Jui-Ping .
IARD 2010: THE 7TH BIENNIAL CONFERENCE ON CLASSICAL AND QUANTUM RELATIVISTIC DYNAMICS OF PARTICLES AND FIELDS, 2011, 330