The Gravitational Wave Stress-Energy (pseudo)-Tensor in Modified Gravity
arXiv:1710.08863 · doi:10.1088/1361-6382/aaa7de
Abstract
The recent detections of gravitational waves by the advanced LIGO and Virgo detectors open up new tests of modified gravity theories in the strong-field and dynamical, extreme gravity regime. Such tests rely sensitively on the phase evolution of the gravitational waves, which is controlled by the energy-momentum carried by such waves out of the system. We here study four different methods for finding the gravitational wave stress-energy pseudo-tensor in gravity theories with any combination of scalar, vector, or tensor degrees of freedom. These methods rely on the second variation of the action under short-wavelength averaging, the second perturbation of the field equations in the short-wavelength approximation, the construction of an energy complex leading to a Landau-Lifshitz tensor, and the use of Noether's theorem in field theories about a flat background. We apply these methods in General Relativity, scalar-tensor theories and Einstein-Æther theory to find the gravitational wave stress-energy pseudo-tensor and calculate the rate at which energy and linear momentum is carried away from the system. The stress-energy tensor and the rate of linear momentum loss in Einstein-Æther theory are presented here for the first time. We find that all methods yield the same rate of energy loss, although the stress-energy pseudo-tensor can be functionally different. We also find that the Noether method yields a stress-energy tensor that is not symmetric or gauge-invariant, and symmetrization via the Belinfante procedure does not fix these problems because this procedure relies on Lorentz invariance, which is spontaneously broken in Einstein-Æther theory. The methods and results found here will be useful for the calculation of predictions in modified gravity theories that can then be contrasted with observations.
18 pages, no figures, submitted to Class. and Quant. Gravity
References in corpus (9)
- GW170817: Observation of Gravitational Waves from a Binary Neutron Star Inspiral
- Gravitational Waves and Gamma-rays from a Binary Neutron Star Merger: GW170817 and GRB 170817A
- GW170814: A Three-Detector Observation of Gravitational Waves from a Binary Black Hole Coalescence
- xPert: Computer algebra for metric perturbation theory
- The Invar tensor package: Differential invariants of Riemann
- Effective Gravitational Wave Stress-energy Tensor in Alternative Theories of Gravity
- Projected Constraints on Lorentz-Violating Gravity with Gravitational Waves
- Papapetrou Energy-Momentum Tensor for Chern-Simons Modified Gravity
- Modified Gravitational Theory as an Alternative to Dark Energy and Dark Matter
Cited by in corpus (13)
- Constraints on Horndeski Theory Using the Observations of Nordtvedt Effect, Shapiro Time Delay and Binary Pulsars
- Scalar-tensor mixed polarization search of gravitational waves
- Gravitational waveforms from the quasicircular inspiral of compact binaries in massive Brans-Dicke theory
- Study of eccentric binaries in Horndeski theory
- Horndeski gravity without screening in binary pulsars
- Gravitational waves in conformal gravity
- The dominating mode of two competing massive modes of quadratic gravity
- Non-adiabatic dynamics of eccentric black-hole binaries in post-Newtonian theory
- Projections of the uncertainty on the compact binary population background using popstock
- Gravitational wave signatures from dark sector interactions
- Forecast Analysis of Astrophysical Stochastic Gravitational Wave Background beyond general relativity: A Case Study on Brans-Dicke Gravity
- Angular Momentum Loss for a Binary System in Einstein-Æther Theory
- Gravitational-wave effects in the most general vector-tensor theory