Fully general relativistic simulations of black hole-neutron star mergers

被引:134
|
作者
Etienne, Zachariah B. [1 ]
Faber, Joshua A. [1 ]
Liu, Yuk Tung [1 ]
Shapiro, Stuart L. [1 ]
Taniguchi, Keisuke [1 ]
Baumgarte, Thomas W. [2 ]
机构
[1] Univ Illinois, Dept Phys, Urbana, IL 61801 USA
[2] Bowdoin Coll, Dept Phys & Astron, Brunswick, ME 04011 USA
来源
PHYSICAL REVIEW D | 2008年 / 77卷 / 08期
关键词
D O I
10.1103/PhysRevD.77.084002
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Black hole-neutron star (BHNS) binaries are expected to be among the leading sources of gravitational waves observable by ground-based detectors, and may be the progenitors of short-hard gamma-ray bursts (SGRBs) as well. We discuss our new fully general relativistic calculations of merging BHNS binaries, which use high-accuracy, low-eccentricity, conformal thin-sandwich configurations as initial data. Our evolutions are performed using the moving puncture method and include a fully relativistic, high-resolution shock-capturing hydrodynamics treatment. Focusing on systems in which the neutron star is irrotational and the black hole is nonspinning with a 31 mass ratio, we investigate the inspiral, merger, and disk formation in the system. We find that the vast majority of material is promptly accreted and no more than 3% of the neutron star's rest mass is ejected into a tenuous, gravitationally bound disk. We find similar results for mass ratios of 21 and 11, even when we reduce the neutron stars (NS) compaction in the 21 mass ratio case. These ambient disks reach temperatures suitable for triggering SGRBs, but their masses may be too small to produce the required total energy output. We measure gravitational waveforms and compute the effective strain in frequency space, finding measurable differences between our waveforms and those produced by binary black hole mergers within the advanced LIGO band. These differences appear at frequencies corresponding to the emission that occurs when the NS is tidally disrupted and accreted by the black hole. The resulting information about the radius of the neutron star may be used to constrain the neutron star equation of state.
引用
收藏
页数:22
相关论文
共 50 条
  • [1] The r-process in black hole-neutron star mergers based on a fully general-relativistic simulation
    Nishimura, N.
    Wanajo, S.
    Sekiguchi, Y.
    Kiuchi, K.
    Kyutoku, K.
    Shibata, M.
    NUCLEAR PHYSICS IN ASTROPHYSICS VI (NPA6), 2016, 665
  • [2] Binary neutron star mergers in fully general relativistic simulations
    Shibata, M
    Uryu, K
    RELATIVISTIC ASTROPHYSICS, 2001, 586 : 717 - 728
  • [3] RELATIVISTIC SIMULATIONS OF BLACK HOLE-NEUTRON STAR COALESCENCE: THE JET EMERGES
    Paschalidis, Vasileios
    Ruiz, Milton
    Shapiro, Stuart L.
    ASTROPHYSICAL JOURNAL LETTERS, 2015, 806 (01)
  • [4] General relativistic simulations of black-hole-neutron-star mergers: Effects of black-hole spin
    Etienne, Zachariah B.
    Liu, Yuk Tung
    Shapiro, Stuart L.
    Baumgarte, Thomas W.
    PHYSICAL REVIEW D, 2009, 79 (04):
  • [5] A Brief Overview of Black Hole-Neutron Star Mergers
    Foucart, Francois
    FRONTIERS IN ASTRONOMY AND SPACE SCIENCES, 2020, 7
  • [6] Black hole-neutron star mergers in globular clusters
    Clausen, Drew
    Sigurdsson, Steinn
    Chernoff, David F.
    MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 2013, 428 (04) : 3618 - 3629
  • [7] The ultimate outcome of black hole-neutron star mergers
    Davies, MB
    Levan, AJ
    King, AR
    MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 2005, 356 (01) : 54 - 58
  • [8] Black hole-neutron star mergers from triples
    Fragione, Giacomo
    Loeb, Abraham
    MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 2019, 486 (03) : 4443 - 4450
  • [9] General relativistic simulations of black-hole-neutron-star mergers: Effects of magnetic fields
    Etienne, Zachariah B.
    Liu, Yuk Tung
    Paschalidis, Vasileios
    Shapiro, Stuart L.
    PHYSICAL REVIEW D, 2012, 85 (06):
  • [10] Black hole-neutron star mergers: Effects of the orientation of the black hole spin
    Foucart, Francois
    Duez, Matthew D.
    Kidder, Lawrence E.
    Teukolsky, Saul A.
    PHYSICAL REVIEW D, 2011, 83 (02):