English

Atmospheric Mass Flux as a Function of Ionospheric Emission on Unmagnetized Earth

Earth and Planetary Astrophysics 2026-01-01 v1 Solar and Stellar Astrophysics

Abstract

We explore ion escape from, and solar ion deposition to, \hll{an unmagnetized Earth-like planet}. We use RHybrid, an ion-kinetic electron-fluid code to simulate the global plasma interaction of unmagnetized Earth with the solar wind. We vary the global ionospheric emission rate, and quantify the resultant planetary ion escape rates (O+O^+ and H+H^+) and the solar wind deposition rate (H+H^+). We use these results to compute the net mass flux to the atmosphere and find that the solar ion deposition rate could be comparable to planetary ion escape rates. For the emission rates simulated, our results show that under typical solar wind conditions (vsw=400 km s1v_{sw} = 400 \ km \ s^{-1}, nsw=5 cm3n_{sw} = 5 \ cm^{-3}), the mass of the atmosphere would decrease by less than 3\% over a billion years, indicating that Earth's intrinsic magnetic field may be unnecessary for retention of its atmosphere. Lastly, we present a hypothesis suggesting that ionospheric emission may evolve through time towards a critical emission rate that occurs at a net mass flux of zero.

Keywords

Cite

@article{arxiv.2512.24004,
  title  = {Atmospheric Mass Flux as a Function of Ionospheric Emission on Unmagnetized Earth},
  author = {P. C. Hinton and D. A. Brain and N. R. Schnepf and R. Jarvinen and J. Cessna and F. Bagenal},
  journal= {arXiv preprint arXiv:2512.24004},
  year   = {2026}
}