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Inferring core-collapse supernova physics with gravitational waves

Publication ,  Journal Article
Logue, J; Ott, CD; Heng, IS; Kalmus, P; Scargill, JHC
Published in: Physical Review D Particles Fields Gravitation and Cosmology
August 17, 2012

Stellar collapse and the subsequent development of a core-collapse supernova explosion emit bursts of gravitational waves (GWs) that might be detected by the advanced generation of laser interferometer gravitational-wave observatories such as Advanced LIGO, Advanced Virgo, and LCGT. GW bursts from core-collapse supernovae encode information on the intricate multidimensional dynamics at work at the core of a dying massive star and may provide direct evidence for the yet uncertain mechanism driving supernovae in massive stars. Recent multidimensional simulations of core-collapse supernovae exploding via the neutrino, magnetorotational, and acoustic explosion mechanisms have predicted GW signals which have distinct structure in both the time and frequency domains. Motivated by this, we describe a promising method for determining the most likely explosion mechanism underlying a hypothetical GW signal, based on principal component analysis and Bayesian model selection. Using simulated Advanced LIGO noise and assuming a single detector and linear waveform polarization for simplicity, we demonstrate that our method can distinguish magnetorotational explosions throughout the Milky Way (D10kpc) and explosions driven by the neutrino and acoustic mechanisms to D2kpc. Furthermore, we show that we can differentiate between models for rotating accretion-induced collapse of massive white dwarfs and models of rotating iron core collapse with high reliability out to several kpc. © 2012 American Physical Society.

Duke Scholars

Published In

Physical Review D Particles Fields Gravitation and Cosmology

DOI

EISSN

1550-2368

ISSN

1550-7998

Publication Date

August 17, 2012

Volume

86

Issue

4

Related Subject Headings

  • Nuclear & Particles Physics
  • 5107 Particle and high energy physics
  • 5101 Astronomical sciences
  • 4902 Mathematical physics
  • 0206 Quantum Physics
  • 0202 Atomic, Molecular, Nuclear, Particle and Plasma Physics
  • 0201 Astronomical and Space Sciences
 

Citation

APA
Chicago
ICMJE
MLA
NLM
Logue, J., Ott, C. D., Heng, I. S., Kalmus, P., & Scargill, J. H. C. (2012). Inferring core-collapse supernova physics with gravitational waves. Physical Review D Particles Fields Gravitation and Cosmology, 86(4). https://doi.org/10.1103/PhysRevD.86.044023
Logue, J., C. D. Ott, I. S. Heng, P. Kalmus, and J. H. C. Scargill. “Inferring core-collapse supernova physics with gravitational waves.” Physical Review D Particles Fields Gravitation and Cosmology 86, no. 4 (August 17, 2012). https://doi.org/10.1103/PhysRevD.86.044023.
Logue J, Ott CD, Heng IS, Kalmus P, Scargill JHC. Inferring core-collapse supernova physics with gravitational waves. Physical Review D Particles Fields Gravitation and Cosmology. 2012 Aug 17;86(4).
Logue, J., et al. “Inferring core-collapse supernova physics with gravitational waves.” Physical Review D Particles Fields Gravitation and Cosmology, vol. 86, no. 4, Aug. 2012. Scopus, doi:10.1103/PhysRevD.86.044023.
Logue J, Ott CD, Heng IS, Kalmus P, Scargill JHC. Inferring core-collapse supernova physics with gravitational waves. Physical Review D Particles Fields Gravitation and Cosmology. 2012 Aug 17;86(4).

Published In

Physical Review D Particles Fields Gravitation and Cosmology

DOI

EISSN

1550-2368

ISSN

1550-7998

Publication Date

August 17, 2012

Volume

86

Issue

4

Related Subject Headings

  • Nuclear & Particles Physics
  • 5107 Particle and high energy physics
  • 5101 Astronomical sciences
  • 4902 Mathematical physics
  • 0206 Quantum Physics
  • 0202 Atomic, Molecular, Nuclear, Particle and Plasma Physics
  • 0201 Astronomical and Space Sciences