Spin effects in gravitational radiation backreaction II. Finite mass effects
L\'aszl\'o \'A. Gergely, Zolt\'an I. Perj\'es, M\'aty\'as Vas\'uth, (KFKI RMKI, Budapest)

TL;DR
This paper extends a formalism to include finite mass and spin effects in gravitational radiation backreaction for binary systems, providing new insights into energy and angular momentum loss calculations.
Contribution
It generalizes previous averaging methods to systems with comparable masses and a spinning body, incorporating spin-orbit interactions up to linear order.
Findings
Finite mass effects contribute significantly to radiation losses.
Spin-orbit terms influence the evolution of orbital parameters.
The formalism enables more accurate modeling of binary systems with spinning components.
Abstract
A convenient formalism for averaging the losses produced by gravitational radiation backreaction over one orbital period was developed in an earlier paper. In the present paper we generalize this formalism to include the case of a closed system composed from two bodies of comparable masses, one of them having the spin S. We employ the equations of motion given by Barker and O'Connell, where terms up to linear order in the spin (the spin-orbit interaction terms) are kept. To obtain the radiative losses up to terms linear in the spin, the equations of motion are taken to the same order. Then the magnitude L of the angular momentum L, the angle kappa subtended by S and L and the energy E are conserved. The analysis of the radial motion leads to a new parametrization of the orbit. From the instantaneous gravitational radiation losses computed by Kidder the leading terms and the…
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