Spinning down newborn neutron stars: nonlinear development of the r-mode instability
Ruxandra Bondarescu, Saul A. Teukolsky, Ira Wasserman (Cornell, University)

TL;DR
This paper models the nonlinear development of the r-mode instability in young neutron stars, revealing complex evolution scenarios and potential gravitational wave signals detectable by advanced LIGO.
Contribution
It introduces a three-mode coupling model for r-mode saturation, showing diverse evolutionary paths and implications for gravitational wave detection.
Findings
Diverse evolution scenarios depending on initial conditions and physical parameters.
Potential gravitational wave detection from young neutron stars within 1 Mpc.
Nonlinear effects significantly influence the star's spin-down and thermal evolution.
Abstract
We model the nonlinear saturation of the r-mode instability via three-mode couplings and the effects of the instability on the spin evolution of young neutron stars. We include one mode triplet consisting of the r-mode and two near resonant inertial modes that couple to it. We find that the spectrum of evolutions is more diverse than previously thought. The evolution of the star is dynamic and initially dominated by fast neutrino cooling. Nonlinear effects become important when the r-mode amplitude grows above its first parametric instability threshold. The balance between neutrino cooling and viscous heating plays an important role in the evolution. Depending on the initial r-mode amplitude, and on the strength of the viscosity and of the cooling this balance can occur at different temperatures. If thermal equilibrium occurs on the r-mode stability curve, where gravitational driving…
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Taxonomy
TopicsPulsars and Gravitational Waves Research · Geophysics and Gravity Measurements · Radio Astronomy Observations and Technology
