Node-locked phase of annual modulations from the gravitational chiral anomaly in the solar Kerr field
arXiv:2607.07912
The paper examines how a parity‑odd curvature invariant of the Sun’s Kerr field could generate a predictable annual phase shift in dark‑matter‑like signals, and compares two simple phenomenological models to the DAMA/LIBRA residuals.
Abstract
The leading parity-odd mass--spin curvature invariant of the solar exterior, , changes sign when the Earth crosses the solar equatorial plane and acts as the geometric source of the gravitational chiral anomaly. We study two minimal phenomenological responses to this structure: a long-memory reservoir and the local worldline derivative . Both have an annual Fourier phase fixed by ephemerides, ~d (June 7--8) or the opposite branch ~d, with a calculable secular drift of ~d\,yr and an energy-independent geometric input phase, while predicting different semiannual fractions, and , respectively. The response amplitudes and their microscopic origin are not predicted; the phase is. Single-amplitude fits to the digitized DAMA/LIBRA--phase2 1--3~keV residuals give for the reservoir and for the derivative, against for the standard-halo cosine. The most precise published phase, ~d, lies from the halo value and from the node-locked one; phase metrology at the two-day level (), together with the phase-locked semiannual component, discriminates between the two clocks.
4 pages, 2 figures