Frozen-In Gravitational Fields

arXiv:2609.25240 · gr-qc, astro-ph.HE, hep-th, physics.plasm-ph · Submitted 2026-09-21 · Read on arXiv

gr-qc, astro-ph.HE, hep-th, physics.plasm-ph

Submitted: 2026-09-21

Updated: 2026-09-21

Comments: Published in Physical Review Letters

Journal ref: Phys. Rev. Lett. 136, 161401 (2026)

DOI: 10.1103/6c4q-kx6f

License: http://creativecommons.org/licenses/by/4.0/

The gist: Spacetime can undergo complex nonlinear evolution, as governed by the Einstein field equations, and a central challenge is to understand the geometric structures that arise, persist, and interact

Terminology

Abstract

Spacetime can undergo complex nonlinear evolution, as governed by the Einstein field equations, and a central challenge is to understand the geometric structures that arise, persist, and interact throughout its evolution. Using a formulation of Einstein equations that parallels nonlinear electrodynamics of continuous media, we show that general relativity admits gravitational field connections---two-surfaces and associated field lines whose connectivity is maintained by the spacetime dynamics. This gravitational frozen-in behavior is enabled by an ideal Ohm-type condition for the gravitational field. We further show that the same framework naturally leads to a conserved ``gravitational magnetic'' flux. A conserved gravitational helicity also emerges, with a clear topological interpretation in terms of gravitational field-line structures. These results identify well-defined topological constraints on admissible spacetime evolution and provide an organizing principle underlying the nonlinear dynamics of spacetime.

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