Gravitational-wave memory: waveforms and phenomenology
Abstract
The non-linear gravitational-wave memory effect is a prediction of general relativity in which test masses are permanently displaced by gravitational radiation. We implement a method for calculating the expected memory waveform from an oscillatory gravitational-wave time series. We use this method to explore the phenomenology of gravitational-wave memory using a numerical relativity surrogate model. Previous methods of calculating the memory have considered only the dominant oscillatory (, ) mode in the spherical harmonic decomposition or the post-Newtonian expansion. We explore the contribution of higher-order modes and reveal a richer phenomenology than is apparent with modes alone. We also consider the `memory of the memory' in which the memory is, itself, a source of memory, which leads to a small, , correction to the memory waveform. The method is implemented in the python package {\tt\sc GWMemory}, which is made publicly available.
Cite
@article{arxiv.1807.00990,
title = {Gravitational-wave memory: waveforms and phenomenology},
author = {Colm Talbot and Eric Thrane and Paul D. Lasky and Fuhui Lin},
journal= {arXiv preprint arXiv:1807.00990},
year = {2018}
}
Comments
8 pages, 6 figures, accepted in PRD