Seismic gravity-gradient noise in interferometric gravitational-wave detectors
Abstract
When ambient seismic waves pass near an interferometric gravitational-wave detector, they induce density perturbations in the earth which produce fluctuating gravitational forces on the interferometer's test masses. These forces mimic a stochastic background of gravitational waves and thus constitute noise. We compute this noise using the theory of multimode Rayleigh and Love waves propagating in a layered medium that approximates the geological strata at the LIGO sites. We characterize the noise by a transfer function from the spectrum of direction averaged ground motion to the spectrum of test mass motion (where is the length of the interferometer's arms, and is the spectrum of gravitational-wave noise). This paper's primary foci are (i) a study of how depends on the various seismic modes; (ii) an attempt to estimate which modes are excited at the LIGO sites at quiet and noisy times; and (iii) a corresponding estimate of the seismic gravity-gradient noise level. At quiet times the noise is below the benchmark noise level of ``advanced LIGO interferometers'' (although not by much near 10 Hz); it may significantly exceed this level at noisy times. The lower edge of our quiet-time noise is a limit beyond which there is little gain from further improvements in vibration isolation and thermal noise, unless one also reduces seismic gravity-gradient noise. Two methods of reduction are discussed: monitoring the earth's density perturbations, computing their gravitational forces, and correcting the data for those forces; and constructing narrow moats around the interferometers' test masses to shield out the fundamental-mode Rayleigh waves, which we suspect dominate at quiet times.
Cite
@article{arxiv.gr-qc/9806018,
title = {Seismic gravity-gradient noise in interferometric gravitational-wave detectors},
author = {Scott A. Hughes and Kip S. Thorne},
journal= {arXiv preprint arXiv:gr-qc/9806018},
year = {2009}
}
Comments
30 pages, Revtex, 12 figures, submitted to Phys Rev D