Constraining the r-mode saturation amplitude from a hypothetical detection of r-mode gravitational waves from a newborn neutron star - sensitivity study
arXiv:1505.03191 · doi:10.1088/0004-637X/810/1/27
Abstract
This paper consists of two related parts: In the first part we derive an expression of the moment of inertia (MOI) of a neutron star as a function of observables from a hypothetical r-mode gravitational wave detection. For a given r-mode detection we show how the value of the MOI of a neutron star constrains the equation of state (EOS) of the matter in the core of the neutron star. Subsequently, for each candidate EOS, we derive a possible value of the saturation amplitude, α, of the r-mode oscillations on the neutron star. Additionally, we argue that a r-mode detection will provide clues about the cooling rate mechanism of the neutron star. The above physics that can be derived from a hypothetical r-mode detection constitute our motivation for the second part of the paper. In that part we present a detection strategy to efficiently search for r-modes in gravitational-wave data. R-mode signals were injected into simulated noise colored with the advanced LIGO (aLIGO) and Einstein Telescope (ET) sensitivity curves. The r-mode waveforms used are those predicted by early theories based on a polytropic equation of state (EOS) neutron star matter. In our best case scenario αof order 10^{-1}, the maximum detection distance when using the aLIGO sensitivity curve is 1 Mpc (supernova event rate of 3-4 per century) while the maximum detection distance when using the ET sensitivity curve is 10 Mpc (supernova event rate of 1-2 per year).
References in corpus (9)
- Neutron Star Observations: Prognosis for Equation of State Constraints
- The gravitational wave burst signal from core collapse of rotating stars
- Spinning down newborn neutron stars: nonlinear development of the r-mode instability
- Shear viscosity in neutron star cores
- How to adapt broad-band gravitational-wave searches for r-modes
- Spin Evolution of Accreting Neutron Stars: Nonlinear Development of the R-mode Instability
- Long gravitational-wave transients and associated detection strategies for a network of terrestrial interferometers
- Searching for gravitational-wave transients with a qualitative signal model: seedless clustering strategies
- Presupernova Evolution of Rotating Massive Stars and the Rotation Rate of Pulsars
Cited by in corpus (10)
- Search for post-merger gravitational waves from the remnant of the binary neutron star merger GW170817
- Searches for Continuous-Wave Gravitational Radiation
- Continuous gravitational waves from neutron stars: current status and prospects
- Probing planetary-mass primordial black holes with continuous gravitational waves
- Diving below the spin-down limit: Constraints on gravitational waves from the energetic young pulsar PSR J0537-6910
- Stochastic gravitational-wave background searches and constraints on neutron-star ellipticity
- Sensitivity study using machine learning algorithms on simulated r-mode gravitational wave signals from newborn neutron stars
- Influence of the nuclear matter equation of state on the r-mode instability using the finite-range simple effective interaction
- Evolution of newborn rapidly rotating magnetars: effects of r-mode and fall-back accretion
- Multimessenger signatures of a deformed magnetar in gamma-ray bursts