Astrophysics: a Modern Discipline with a Newtonian origin
arXiv:2509.11886 · doi:10.1098/rsta.2023.0294
Abstract
Understanding the formation and evolution of stellar-mass binary black holes (BBHs) requires a thorough investigation of the key physical processes involved. While one pathway involves the isolated evolution of massive binary stars, affected by uncertain stages like core-collapse supernovae and common envelope evolution, an alternative channel is dynamical formation in dense stellar environments. Newtonian gravity has traditionally provided a robust and computationally efficient framework for modeling large-scale gravitational interactions. However, accurately capturing close encounters and black hole mergers necessitates the use of general relativity. This work focuses on assessing the applicability of post-Newtonian gravity in bridging these regimes, offering a physically insightful and computationally tractable approach to modeling BBH formation in the gravitational-wave era of astronomy.
14 pages. This article is part of the theme issue "Newton, Principia, Newton Geneva Edition (17th-19th) and modern Newtonian mechanics: heritage, past, and present"