Vainshtein Mechanism in Binary Pulsars
Claudia de Rham, Andrew J. Tolley, Daniel H. Wesley

TL;DR
This paper analyzes scalar gravitational radiation in binary pulsars within models exhibiting the Vainshtein mechanism, revealing that radiation is less suppressed than static effects, with implications for modified gravity theories.
Contribution
It provides the first computation of scalar gravitational radiation in binary pulsars considering the Vainshtein mechanism, highlighting the hierarchy of scales affecting suppression.
Findings
Scalar radiation is less suppressed than static fifth forces.
Monopole and dipole radiation are present.
Vainshtein suppression depends on scale hierarchy, not orbital radius.
Abstract
We compute the scalar gravitational radiation from a binary pulsar system in the simplest model that exhibits the Vainshtein mechanism. The mechanism is successful in screening the effect from scalar fields conformally coupled to matter, although gravitational radiation is less suppressed relative to its general relativity predictions than static fifth forces effects within the pulsar system. This is due to a combination of two effects: firstly the existence of monopole and dipole radiation; secondly the Vainshtein suppression comes from the hierarchy of scales between the inverse frequency scale and the Vainshtein radius, rather than the orbital radius of the pulsar system. Extensions of these results will have direct relevance to infrared modifications of gravity, such as massive gravity theories, which are known to exhibit a Vainshtein mechanism. Generalization to Galileon models…
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