Modeling the Performance of the Burevestnik Nuclear-Powered Cruise Missile
Abstract
In the last decade, Russia's strategic arsenal has pivoted towards a reliance on exotic nuclear-weapon delivery systems. One such system, the Burevestnik (NATO: 9M730) is claimed to be a nuclear-powered, nuclear-armed cruise missile capable of nearly indefinite flight. The air-breathing nuclear propulsion system used in this missile is unique, and its attributes are generally unfamiliar to both the aerospace and nuclear-security communities. To better understand the Burevestnik, and the potential of air-breathing nuclear propulsion systems generally, we have developed a nuclear-aircraft modeling toolkit capable of constraining the missile's performance characteristics. Using this framework, we conclude that the Burevestnik is a subsonic cruise missile system measuring ~m in length, with a ~m wingspan, likely powered by a direct-cycle nuclear turbojet (our calculations almost entirely exclude the possibility of a nuclear ramjet). Under these assumptions, our models predict a reactor thermal power of ~MWth at cruise, with peak power demand during climb and terminal maneuvering exceeding ~MWth, which may be met with a supplemental chemical interburner. Monte Carlo simulations show that escaping neutrons will generate in excess of 5~TBq of gaseous radionuclides per MW-hr of flight, including isotopes such as , , and , some of which may be detectable using existing monitoring networks.
Keywords
Cite
@article{arxiv.2607.01234,
title = {Modeling the Performance of the Burevestnik Nuclear-Powered Cruise Missile},
author = {Jake J. Hecla and R. Scott Kemp},
journal= {arXiv preprint arXiv:2607.01234},
year = {2026}
}