Welcome to the new version of CaltechAUTHORS. Login is currently restricted to library staff. If you notice any issues, please email coda@library.caltech.edu
Published March 15, 2008 | public
Journal Article Open

Generalization of Ryan's theorem: Probing tidal coupling with gravitational waves from nearly circular, nearly equatorial, extreme-mass-ratio inspirals

Abstract

Extreme-mass-ratio inspirals (EMRIs) and intermediate-mass-ratio inspirals (IMRIs)—binaries in which a stellar-mass object spirals into a massive black hole or other massive, compact body—are important sources of gravitational waves for LISA and LIGO, respectively. Thorne has speculated that the waves from EMRIs and IMRIs encode, in principle, all the details of (i) the central body's spacetime geometry (metric), (ii) the tidal coupling (energy and angular momentum exchange) between the central body and orbiting object, and (iii) the evolving orbital elements. Fintan Ryan has given a first partial proof that this speculation is correct: Restricting himself to nearly circular, nearly equatorial orbits and ignoring tidal coupling, Ryan proved that the central body's metric is encoded in the waves. In this paper we generalize Ryan's theorem. Retaining Ryan's restriction to nearly circular and nearly equatorial orbits, and dropping the assumption of no tidal coupling, we prove that Thorne's conjecture is nearly fully correct: the waves encode not only the central body's metric but also the evolving orbital elements and (in a sense slightly different from Thorne's conjecture) the evolving tidal coupling.

Additional Information

©2008 The American Physical Society. (Received 28 February 2007; published 19 March 2008) We would like to thank Yanbei Chen, Steve Drasco, Yi Pan, and Kip Thorne for helpful discussions, Drasco for carefully reading a draft of this paper, and Thorne for assistance with the prose of this paper. This work was supported in part by NSF grants PHY-0099568 and PHY-0601459, NASA grants NAG5-12834 and NNG04GK98G, and the Brinson Foundation.

Files

LICprd08.pdf
Files (195.8 kB)
Name Size Download all
md5:d85ec988f9e5b0320acd2219792182bb
195.8 kB Preview Download

Additional details

Created:
August 22, 2023
Modified:
October 16, 2023